Bearing power generating configuration
09664234 ยท 2017-05-30
Assignee
Inventors
- Frank Bartl (Grenzach-Wyhlen, DE)
- Joseph Erskine (Falkirk, GB)
- Sebastian Ziegler (Schweinfurt, DE)
- Andreas Clemens van der Ham (Utrecht, NL)
Cpc classification
F16C41/004
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C2300/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C33/78
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02E10/72
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
International classification
F02B63/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H02K7/18
ELECTRICITY
F16C41/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C33/78
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A power generating bearing assembly comprising a power generating subassembly integrated into a bearing. The power generating subassembly utilizes the relative motion between a bearing inner ring and a bearing outer ring of the bearing to generate electrical power. A sealing system is attached to one of the bearings. The power generating subassembly includes an electrical generator in operational engagement with a magnetically polarized material. The electrical generator is attached to the non-sealing carrying bearing. The magnetically polarized material is integrated into a supported member, which is a unitary section of the seal that extends axially from an end surface of the bearing rings. The relative motion between the rings engages the electrical generator and the magnetically polarized material causing a generator core of the electrical generator to create an electrical current.
Claims
1. A power generating bearing assembly, the power generating bearing assembly comprising: a bearing comprising: a bearing outer ring having an outer surface, a bearing engaging inner surface, and an outer ring end surface, a bearing inner ring having a bearing assembly interior mating surface, a bearing outer race engaging surface, and an inner ring end surface, wherein said bearing engaging outer surface is sized to rotationally engage with said outer ring bearing engaging inner surface, a sealing system provided between said bearing outer ring and said bearing inner ring, wherein said sealing system is secured to a sealing attachment ring, wherein said sealing attachment ring is one of said bearing outer ring and said bearing inner ring and said remaining ring is a respective rotational ring, said sealing ring comprising a sealing section adapted to seal against the other of said bearing outer ring and said bearing inner ring, said sealing system comprising a magnetically polarized material supporting member carrying a magnetically polarized material, said magnetically polarized material supporting member provided as a unitary, cantilevered section of said sealing system, said cantilevered magnetically polarized material supporting member extending axially beyond said ring end surfaces, positioning the magnetically polarized material externally and axially beyond the outer ring end surface and the inner ring end surface, wherein said inner ring is rotatationally assembled within said outer ring bearing engaging inner surface; and an electrical power generator including a generator core comprising an electrical coil wound about a magnetic core to generate electrical power, said electrical power generator being attached to said respective rotational ring directing said generator core in a radial direction to operationally engage with said magnetically polarized material; wherein a relative motion between said bearing outer ring and said bearing inner ring passes said magnetically polarized material across said generator core causing said generator core to create an electrical current.
2. A power generating bearing assembly as recited in claim 1, said sealing system further comprising a sealing section inserted between said bearing outer ring and said bearing inner ring.
3. A power generating bearing assembly as recited in claim 2, said sealing section further comprising a sealing feature, said sealing feature rides against said bearing outer race engaging surface of said respective rotational ring.
4. A power generating bearing assembly as recited in claim 3, said sealing feature retains said magnetically polarized material in a spatial relation with said electrical power generator, retaining an air gap therebetween.
5. A power generating bearing assembly as recited in claim 1, further comprising a circumferential gliding material positioned between said electrical power generator and said magnetically polarized material.
6. A power generating bearing assembly as recited in claim 1, said magnetically polarized material being provided in a complete circumference.
7. A power generating bearing assembly as recited in claim 1, said magnetically polarized material being provided in a partial circumference.
8. A power generating bearing assembly as recited in claim 1, said magnetically polarized material being provided in a plurality of segments, said plurality of segments being spatially arranged about a circumference.
9. A power generating bearing assembly, the power generating bearing assembly comprising: a bearing comprising: a bearing outer ring having an outer surface, a bearing engaging inner surface, and an outer ring end surface, a bearing inner ring having a bearing assembly interior mating surface, a bearing outer race engaging surface, and an inner ring end surface, wherein said bearing engaging outer surface is sized to rotationally engage with said outer ring bearing engaging inner surface, a sealing system provided between said bearing outer ring and said bearing inner ring, wherein said sealing system is secured to said bearing outer ring, said sealing system comprising a magnetically polarized material supporting member formed in an annular ring, said sealing ring comprising a sealing section adapted to seal against the other of said bearing outer ring and said bearing inner ring, said magnetically polarized material supporting member carrying a magnetically polarized material, said magnetically polarized material supporting member provided as a unitary, cantilevered section of said sealing system, said cantilevered magnetically polarized material supporting member extending axially beyond said ring end surfaces, positioning the magnetically polarized material externally and axially beyond the outer ring end surface and the inner ring end surface, wherein said inner ring is rotatationally assembled within said outer ring bearing engaging inner surface; and an electrical power generator including a generator core comprising an electrical coil wound about a magnetic core to generate electrical power, said electrical power generator being attached to said bearing inner ring directing said generator core in a radial direction to operationally engage with said magnetically polarized material; wherein a relative motion between said bearing outer ring and said bearing inner ring passes said magnetically polarized material across said generator core causing said generator core to create an electrical current.
10. A power generating bearing assembly as recited in claim 9, said sealing system further comprising a sealing section inserted between said bearing outer ring and said bearing inner ring.
11. A power generating bearing assembly as recited in claim 10, said sealing section further comprising a sealing feature, said sealing feature rides against said bearing outer race engaging surface of said respective rotational ring.
12. A power generating bearing assembly as recited in claim 11, said sealing feature retains said magnetically polarized material in a spatial relation with said electrical power generator, retaining an air gap therebetween.
13. A power generating bearing assembly as recited in claim 9, further comprising a circumferential gliding material positioned between said electrical power generator and said magnetically polarized material.
14. A power generating bearing assembly as recited in claim 9, said magnetically polarized material being provided in a complete circumference.
15. A power generating bearing assembly as recited in claim 9, said magnetically polarized material being provided in a partial circumference.
16. A power generating bearing assembly as recited in claim 9, said magnetically polarized material being provided in a plurality of segments, said plurality of segments being spatially arranged about a circumference.
17. A power generating bearing assembly as recited in claim 9, said sealing system is designed to retain said magnetically polarized material in a spatial relation with said electrical power generator using inertial energy during rotation of said bearing outer ring, thus retaining an air gap between said magnetically polarized material and said electrical power generator.
18. A power generating bearing assembly as recited in claim 1, said magnetically polarized material and said electrical power generator are arranged having opposing surfaces, wherein each of the opposing surfaces of said magnetically polarized material and said electrical power generator are arranged extending outward parallel to an axial axis of said power generating bearing assembly.
19. A power generating bearing assembly as recited in claim 9, said magnetically polarized material and said electrical power generator are arranged having opposing surfaces, wherein each of the opposing surfaces of said magnetically polarized material and said electrical power generator are arranged extending outward parallel to an axial axis of said power generating bearing assembly.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) For a fuller understanding of the nature of the present invention, reference should be made to the accompanying drawings in which:
(2)
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(5) Like reference numerals refer to like parts throughout the several views of the drawings.
DETAILED DESCRIPTION OF THE PRESENT INVENTION
(6) The following detailed description is merely exemplary in nature and is not intended to limit the described embodiments or the application and uses of the described embodiments. As used herein, the word exemplary or illustrative means serving as an example, instance, or illustration. Any implementation described herein as exemplary or illustrative is not necessarily to be construed as preferred or advantageous over other implementations. All of the implementations described below are exemplary implementations provided to enable persons skilled in the art to make or use the embodiments of the disclosure and are not intended to limit the scope of the disclosure, which is defined by the claims. For purposes of description herein, the terms upper, lower, left, rear, right, front, vertical, horizontal, and derivatives thereof shall relate to the invention as oriented in
(7) A generic exemplary system schematic is presented in
(8) The processing device 150 includes common digital data processing components, include a motherboard, at least one microprocessor, memory, a data recording device, digital instructions (such as software, firmware, and the like), input/output controllers, data communication devices, and the like. A user input device 154 and a user output device 152 are connected in signal communication to the processing device 150 through the input/output controllers. The digital data signal is received by the processing unit 150 and interpreted accordingly. The digital data signal would be provided when the power generating bearing assembly 100 is subjected to movement. The relative movement between the bearing inner ring 112 and the bearing outer ring 116 causes the power generating subassembly 200 to generate electrical power. Therefore, the electrical power is only available when the bearing inner ring 112 and bearing outer ring 116 are in relative motion to one another. It is understood that electrical power can be stored in a capacitor or battery integrated within the power generating subassembly 200. This would enable short cycles of additional power for continued operation after the bearing inner ring 112 and bearing outer ring 116 become stationary respective to one another. This would be beneficial for recording conditions of the bearing 110 after halting any operation, during cool down, and the like. The system can be recording conditions such as temperature, and the like.
(9) An exemplary embodiment of the power generating subassembly 200 is presented as a power generating subassembly 300 illustrated in
(10) In the exemplary embodiment, the bearing 110 comprises a sealing system 320. The sealing system 320 spans between the bearing inner ring 112 and bearing outer ring 116 forming a seal therebetween. The sealing system 320 would be affixed to a sealing attachment ring, wherein the sealing attachment ring is one of the bearing outer ring 116 and the bearing inner ring 112, wherein the remaining ring is subsequently referred to as a respective rotational ring. The sealing system 320 is fabricated of any suitable sealing material, including rubber, nylon, and the like. A sealing feature 328 remains in contact with the bearing outer race engaging surface 115, providing a seal therebetween. The sealing feature 328 can be shaped in any suitable geometry to optimize the sealing interface. The sealing feature 328 additionally retains the magnetically polarized material supporting member 322 at a desired spatial arrangement with the electrical power generator 310, thus retaining an air gap 330. The sealing system 320 is provided in a circular shape (as best illustrated in
(11) An electrical power generator 310 is included as a component of the power generating subassembly 300, wherein the electrical power generator 310 includes a generator core 312. The generator core 312 comprises an electrical coil 316 wound about a magnetic core 318. The electrical power generator 310 is assembled to the respective rotational ring orienting the generator core 312 in a radial direction to operationally engage with the magnetically polarized material.
(12) An optional circumferential gliding material 326 can be attached to the electrical power generator 310, the circumferential gliding material 326 being attached upon a surface which is parallel and proximate the magnetically polarized material 324.
(13) In operation, as the bearing inner ring 112 and bearing outer ring 116 rotate respective to one another, the generator core 312 passes across the magnetically polarized material 324. The magnetically polarized material 324 includes variations in magnetic properties, wherein as the magnetically polarized material 324 moves relative to the generator core 312, the variations in magnetic properties changes the magnetic flux of a magnetic core 318 integrated into the generator core 312. The change in magnetic flux creates an electrical current in an electrical coil 316 wrapped about the magnetic core 318. The electrical current is conveyed to other equipment by wires or other electrical conduits.
(14) The circumferential gliding material 326 can be any friction reducing material, including Polytetrafluoroethylene (PTFE), and the like. PTFE is a synthetic fluoropolymer of tetrafluoroethylene that finds numerous applications. The most well known brand name of PTFE is Teflon () manufactured by the DuPont Company (). Other materials, including Polyoxymethylene (POM), also known as acetal, polyacetal, and polyformaldehyde, is an engineering thermoplastic used in precision parts that require high stiffness, low friction and excellent dimensional stability The most well known exemplary brand name of POM is Delrin (), also manufactured by the DuPont Company ().
(15) The illustrated exemplary configuration assembles the electrical power generator 310 to the bearing inner ring 112 and the sealing system 320 is affixed to the bearing outer ring 116. In this configuration, the magnetically polarized material supporting member 322 is subjected to a centrifugal force and retained in location by the circular ring shape. The magnetically polarized material supporting member 322 can be retained by friction against the circumferential gliding material 326 or an air gap 330 between the magnetically polarized material 324 an the opposing surface of the electrical power generator 310.
(16) It is also understood that the electrical power generator 310 can be assembled to the bearing outer ring 116 and the sealing system 320 can be affixed to the bearing inner ring 112. In this alternate configuration, the magnetically polarized material supporting member 322 is subjected to a centrifugal force and retained in location by friction against the circumferential gliding material 326 or the air gap 330 between the magnetically polarized material 324 an the opposing surface of the electrical power generator 310.
(17) Since many modifications, variations, and changes in detail can be made to the described preferred embodiments of the invention, it is intended that all matters in the foregoing description and shown in the accompanying drawings be interpreted as illustrative and not in a limiting sense. Thus, the scope of the invention should be determined by the appended claims and their legal equivalence.
(18) TABLE-US-00001 Ref. No. Description 110 bearing 112 bearing inner ring 113 inner ring planar end surface 114 bearing assembly component engagement surface 115 bearing outer race engaging surface 116 bearing outer ring 117 outer ring planar end surface 118 bearing outer surface 119 bearing outer race engaging surface 120 bearing race set 150 processing unit 152 output device 154 user input device 200 power generating subassembly 296 wired signal interface 298 wireless signal interface 300 power generating subassembly 310 electrical power generator 312 generator core 316 electrical coil 318 magnetic core 320 sealing system 321 sealing section 322 magnetically polarized material supporting member 324 magnetically polarized material 326 circumferential gliding material 327 friction reducing material 328 sealing feature 330 air gap 500 axial direction 510 radial direction