Device and Method for Transferring Electrical Power to a High-Speed Rotating Object
20210257936 ยท 2021-08-19
Assignee
Inventors
Cpc classification
B23B37/00
PERFORMING OPERATIONS; TRANSPORTING
H02N2/0055
ELECTRICITY
B23Q1/0009
PERFORMING OPERATIONS; TRANSPORTING
B23B47/00
PERFORMING OPERATIONS; TRANSPORTING
International classification
H02N2/00
ELECTRICITY
B23B47/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A device and method using the electromechanical properties of piezoelectric materials to generate and deliver electrical power to a high speed electrically powered rotatable shaft. The device has a stationary module that is connected to an electrical source; and has a rotatable module, which is mechanically connected to the electrically powered rotatable shaft. The rotatable module rotates relative to the stationary module. When the stationary module is electrically energized, the stationary piezoelectric component expands and causes the rotatable piezoelectric component to compress. When the rotatable piezoelectric component compresses, it generates electrical power transferred to the electrically powered rotatable shaft. Thus, electrical energy can be delivered to the electrically powered rotatable shaft without a direct electrical connection. The present invention is particularly useful in applications requiring large diameter through-hole dimensions.
Claims
1. An electrical power transfer device comprising: a hollowed-out housing unit comprising: a top, a bottom, an inside wall, an outside wall and a centrally aligned cavity that is open to the top and bottom of the housing unit; an insulated stationary piezoelectric module attached to the inside wall of the housing unit and couplable to an electrical source, a rotatable module located beneath the stationary module that is operably connected to the insulated stationary piezoelectric module and configured to mechanically and electrically couple to an electrically powered rotatable shaft of a rotatable device inserted into the centrally aligned cavity; and a first bearing assembly running in at least one first track assembly sandwiched between and connecting the stationary and rotatable modules.
2. The transfer device of claim 1, wherein the bearing assembly is selected from the group consisting of a sleeve bearing, ball bearing, roller bearing, ball thrust bearings, roller thrust bearings, tapered thrust bearings and fluid ball bearing.
3. The transfer device of claim 1, wherein the stationary and rotatable piezoelectric modules comprise lead zirconate titanate.
4. The transfer device of claim 1, wherein the stationary piezoelectric module is sandwiched between two electrical contacts that are insulated from the first track assembly.
5. The transfer device of claim 4, wherein the electrical contacts are selected from the group consisting of a ring, a washer, or a surface coating.
6. The transfer device of claim 5, wherein the rotatable piezoelectric module is sandwiched between two electrical contacts that are insulated from the first track assembly.
7. The transfer device of claim 6, wherein the electrical contacts that sandwich the rotatable piezoelectric module connect to the electrically powered device.
8. The transfer device of claim 7, wherein the rotatable piezoelectric module further comprises a second bearing assembly in a second track assembly sandwiched between the rotatable module and the bottom of the housing unit.
9. A method comprising: inserting a machining tool component of a rotatable electrical device into a cavity located within an electric transfer device said device comprising an insulated stationary piezoelectric module and an insulated rotatable module that are connected by a bearing assembly running in a first track assembly located between the stationary and rotatable modules; connecting the machining tool component to mechanical contact points on a second bearing assembly operably connected to and positioned beneath the rotatable module; connecting the machining tool component to electrical contact points on the rotatable module; applying electricity to a first electrical contact within the stationary module; generating an electric field across the stationary piezoelectric module that expands in the presence of an electric field and exerts a compression force on the rotatable module that subsequently generates an electrical potential across a pair of electrical contacts located on the rotatable module; and powering the rotatable electrical device by the electrical output of the rotatable module.
10. The method of claim 9, wherein the first and second bearing assembly are selected from the group consisting of a sleeve bearing, ball bearing, roller bearing, ball thrust bearings, roller thrust bearings, tapered thrust bearings and fluid ball bearing.
11. The method of claim 9, wherein the stationary and rotatable piezoelectric modules comprise lead zirconate titanate.
12. An electrical power transfer device, comprising: a stationary module encircling a rotatable module that is operably connected to the stationary module and a bearing assembly located between the stationary and rotatable modules; the stationary module comprising insulating layers, conducting layers and a stationary piezoelectric component that are sandwiched between a non-flexible and non-expandable outer wall and a flexible outer race for the bearing assembly; and the rotatable module comprising insulating layers, conducting layers and a rotatable piezoelectric component that are sandwiched between a rotatable flexible inner race for the bearing assembly and a non-flexible and non-expandable inner wall that forms a centrally aligned cavity within the device; wherein the rotatable module is rotatable on the bearing assembly.
13. The rotatable module of claim 12, further comprising mechanical contact points on a second bearing assembly adjacent and operably connected to the rotatable module.
14. The stationary module of claim 13, further comprising a first electrical contact.
15. The electrical power transfer device of claim 14, wherein an electrically powered rotatable shaft is inserted into the centrally aligned hole and mechanically connected to the mechanical contact points.
16. The electrical power transfer device of claim 15, wherein applying electricity to the first electrical contact generates an electric field across the stationary module that causes the stationary piezoelectric component to expand and the rotatable piezoelectric component to compress, generating an electrical potential across the pair of electrical contacts and powering the rotatable shaft.
17. The electrical power transfer device of claim 12, wherein the bearing assembly between the stationary module and the rotatable module comprises a ball bearing system.
18. The electrical power transfer device of claim 12, wherein the bearing assembly between the stationary module and the rotatable module comprises a fluid filled bearing system.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0009]
[0010]
[0011]
[0012]
[0013]
[0014]
DETAILED DESCRIPTION
[0015] As shown in
[0016] Below the insulated stationary piezoelectric module 11, a rotatable module 12 is located. The rotatable module 12 can be, for example, a ring or a washer. The rotatable module 12 is a stack of materials comprising one set of electrical insulators 121, an electrical contact 122 (which can, for example, be in the shape of a ring or a washer, or can be a surface coating) in direct contact with one side of the rotatable piezoelectric component 123 and the other side of rotatable piezoelectric component 123 is in direct contact with the electrical contact 124 (which can, for example, be in the shape of a ring or a washer, or can be a surface coating). The rotatable piezoelectric component 123 is sandwiched between electrical contacts 122 and 124 and the electrical contacts 122 and 124 are insulated from deep groove ball bearing raceway assemblies 125 and 128 and the outer housing 10 by the electrical insulators 121. Electrical contacts 122 and 124 are used to connect any electrical devices in the rotating section of the disclosed device to the electrical energy output of the rotatable piezoelectric component 123. In this embodiment, an active ultrasonically enhanced drill bit assembly or other rotating shaft assembly can be extended through the hole or cavity 14 in housing 10 and can be mechanically attached to the rotatable portion of the device at contact area 126.
[0017] The stationary module 11 and the rotatable module 12 can be connected by ball bearings 15 running in races or track assemblies 127 and 128 in between the stationary module 11 and the rotatable piezoelectric module 12. The rotatable module 12 also comprises ball bearings 15 in a race or track formed underneath it between the rotatable module 12 and the bottom 102 of the inside of the housing 10.
[0018] In one embodiment, the rotatable module 12 can also have a second bearing assembly 17 between the race or track assembly 125 and the housing 10. In one embodiment, the rotatable module 12 can also have additional ball bearings 18 in a slotted 16 race or track assembly 128 and housing 10.
[0019]
[0020] The embodiment shown in
[0021]
[0022] The embodiment shown in
[0023] Method of Use
[0024] The method of using the embodiment of the device shown in
[0025] In continued reference to
[0026] The method of using the embodiment of the device shown in