Integrated electric-to-hydraulic conversion machine
12152572 ยท 2024-11-26
Assignee
Inventors
- James Van de Ven (Minneapolis, MN, US)
- Garrett Bohach (Minneapolis, MN, US)
- Nishanth (Madison, WI, US)
- Eric Severson (Middleton, WI, US)
Cpc classification
H02K21/24
ELECTRICITY
F04B7/0023
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B17/03
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B1/0452
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B7/0007
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B1/1071
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H02K7/14
ELECTRICITY
F04B1/0472
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F04B17/03
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B1/0452
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B1/0472
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B7/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H02K21/24
ELECTRICITY
Abstract
An electric-to-hydraulic conversion machine includes an axial flux electric motor and a hydraulic pump. The motor includes a spindle, at least one rotor configured to rotate about the spindle, and at least one stator configured to drive rotation of the at least one rotor about the spindle. The hydraulic pump includes a piston block having a plurality of cylinders, a plurality of pistons each supported in one of the cylinders of the piston block, and a cam ring. The piston block is attached to the at least one rotor and is configured to rotate about the spindle with rotation of the at least one rotor. The cam ring is configured to radially drive the pistons during rotation of the piston block about the spindle, which drives a fluid flow.
Claims
1. An electric-to-hydraulic conversion machine comprising: an axial flux electric motor comprising: a spindle; a first rotor configured to rotate about the spindle; and a first stator configured to drive rotation of the first rotor about the spindle; and a hydraulic pump comprising: a piston block including a plurality of cylinders, the piston block attached to the first rotor and configured to rotate about the spindle with rotation of the first rotor; a plurality of pistons, each cylinder containing one of the pistons; and a cam ring configured to radially drive the pistons during rotation of the piston block about the spindle, which drives a fluid flow for operating a hydraulic tool, wherein: the axial flux electric motor comprises a second rotor configured to rotate about the spindle; and the first stator is positioned between the first and second rotors, and is configured to drive rotation of the second rotor about the spindle.
2. The machine of claim 1, wherein the electric motor includes rotor drives attached to the first rotor, each rotor drive selected from the group consisting of permanent magnets, conductive bars, conductive coils, and non-permanent magnet poles.
3. The machine of claim 2, wherein each rotor drive comprises a Halbach array of permanent magnets.
4. The machine of claim 1, wherein the first rotor comprises a plurality of permanent magnets attached to an iron disc.
5. The machine of claim 1, wherein the hydraulic pump includes a distributor valve configured to direct fluid flows between the cylinders and first and second fluid flow pathways of the spindle.
6. The machine of claim 1, wherein the cam ring is attached to the stator and includes one or more lobes.
7. The machine of claim 1, wherein the first stator is coreless.
8. The machine of claim 7, wherein the first stator comprises a plurality of conductive coils, each having a hub portion, an outer ring portion and a pair of spokes connecting the hub portion to the outer ring portion.
9. The machine of claim 8, wherein the hub portions of the plurality of coils form a central hub, and the cam ring is received within an interior of the central hub.
10. The machine of claim 1, wherein the first stator comprises a toroid winding around a core.
11. A method of operating an electric-to-hydraulic conversion machine comprising: providing the electric-to-hydraulic conversion machine comprising: an axial flux electric motor comprising: a spindle; and a pair of rotors, and a stator between the pair of rotors configured to drive rotation of the pair of rotors about the spindle; and a hydraulic pump comprising: a piston block including a plurality of cylinders, the piston block attached to one of the rotors and configured to rotate about the spindle with rotation of the attached rotor; a plurality of pistons, each cylinder containing one of the pistons; and a cam ring configured to radially drive the pistons during rotation of the piston block about the spindle; driving rotation of the pair of rotors about the spindle in response to providing electrical power to the axial flux electric motor; and generating a fluid flow comprising driving the pistons within the cylinders using the cam ring.
12. The method of claim 11, wherein the hydraulic pump includes a distributor valve configured to direct fluid flows between the cylinders and first and second fluid flow pathways of the spindle.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF ILLUSTRATIVE EMBODIMENTS
(9) Embodiments of the present disclosure are described more fully hereinafter with reference to the accompanying drawings. Elements that are identified using the same or similar reference characters refer to the same or similar elements. The various embodiments of the present disclosure may, however, be embodied in many different forms and should not be construed as limited to the embodiments set forth herein. Rather, these embodiments are provided so that this disclosure will be thorough and complete, and will fully convey the scope of the present disclosure to those skilled in the art.
(10) Specific details are given in the following description to provide a thorough understanding of the embodiments. However, it is understood by those of ordinary skill in the art that the embodiments may be practiced by those skilled in the art without these specific details. For example, circuits, systems, networks, processes, frames, supports, connectors, motors, processors, and other components may not be shown, or shown in block diagram form in order to not obscure the embodiments in unnecessary detail.
(11) Embodiments of the present disclosure are directed to an electric-to-hydraulic conversion machine that may be suitable for many different applications requiring hydraulic actuators and mechanisms, such as in motor vehicles (e.g., off-highway vehicles), robotics, and stationary systems, to exploit the benefit of both hydraulic and electric domains.
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(13) The hydraulic pump 104 may be used to generate one or more fluid flows (e.g., hydraulic fluid flows), such as fluid flows 172A and/or 172B, which may be identical, in response to driving the axial flux electric motor 102 using electrical power 173, such as from a battery 174. Controllers, circuits and other conventional electronics for powering and controlling the motor 102 are not shown in order to simplify the illustration. Additionally, the machine 100 may be driven in a generator mode, in which the hydraulic fluid flows from the hydraulic pump 104 drive the motor 102 in a generator mode to generate electrical energy. The generated electrical energy may be used to charge the battery 174 or used for another purpose.
(14) In the example of
(15) The motor vehicle 170 may take on any suitable form, and the generated fluid flows may be used to drive or operate one or more hydraulic actuators 176 (e.g., hydraulic cylinders or hydraulic motors) of the vehicle 170. For example, the motor vehicle 170 provided in
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(17) One embodiment of the hydraulic pump 104 includes a stationary cam ring 112, which may be attached to the stator 106, a piston block 114 that is attached to the rotor 108, and a stationary distributor valve 116. The rotation of the piston block 114 about the axis 111 of the spindle 110 with the rotors 108 drives pistons within the piston block 114, which in turn drives a fluid flow 172A from the piston block 114 through a fluid flow pathway of a first side 115A of the hollow spindle 110 and a fluid flow 172B from a fluid flow pathway of a second side 115B of the spindle 110 to the piston block 114, as indicated in
(18) The one or more stator 106 and the rotors 108 may take on any suitable form. In one embodiment, the rotor 108 includes a rotor drive 118 that interacts with the stator 106 to drive rotation of the rotor 108 about the spindle 110, in accordance with conventional axial flux electric motors.
(19) Isometric views of an exemplary rotor 108 and stator 106 for the machine 100 of
(20) Alternatively, each rotor 108 may comprise a rotor drive 118 in the form of a Halbach array for the permanent magnets 120 to allow for a coreless design, and eliminate the need for the iron base plate 122. This reduces the thickness and the mass of the rotors 108, thereby reducing rotor inertia.
(21) In yet another embodiment, the motor 102 may be an induction motor, in which the permanent magnets 120 of the rotor drive 118 of
(22) The stator 106 may be coreless and comprise multiple conductive coils 126, such as coils 126A-F, as shown in
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(24) One advantage to the configuration of the machine of
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(26) The piston block 114 may include a plurality of cylinders 140, and a piston 142 in each of the cylinders 140. The pistons 142 may each be biased radially away from the spindle axis 111 using any suitable technique, such as a spring, for example. The pistons 142 may take on any suitable form, such as ball pistons (as shown), cylindrical pistons, roller pistons, or other suitable pistons.
(27) As mentioned above, the piston block 114 is attached to the rotors 108 and is configured to rotate about the spindle axis 111 with rotation of the rotors 108. Any suitable fastening technique may be used to attach the piston block 114 to the rotors 108. For example, the piston block may be attached to the base 122, such as the central portion of the base 122 (
(28) The cam ring 112 may be attached to the interior of the central hub 134 (
(29) In some embodiments, the pump 104 of the distributor valve 116 is attached to the spindle 110 and has a fixed position relative to the stator 106 and the cam ring 112. In one embodiment, the distributor valve 116 includes a first port 150A in fluid communication with the pathway 115A, and a second port 150B in fluid communication with the pathway 115B. During rotation of the cylinder block 114 about the axis 111 in the direction indicated by arrow 151 relative to the cam ring 112, the distributor valve 116 receives fluid flows 152A from the cylinders 140, in which the pistons 142 are driven toward the spindle axis 111 by the cam ring 112, and directs the aggregate fluid flow through the port 150A as the fluid flow 172A. Also, during rotation of the cylinder block 114, due to the bias applied to the pistons 142, some of the pistons 142 are driven away from the axis 111 and toward the cam ring 112, which drives fluid flow portions 152B into the cylinders 142 and generates the fluid flow 172B.
(30) The cam ring 112 may also include multiple lobes for multi-cycle driving of the pistons 142 toward and away from the spindle axis 111. In this case, the distributor valve 116 may include multiple ports 150 for handling the fluid flows to and from the cylinders 140, and the spindle 110 may correspondingly include multiple fluid flow pathways.
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(32) The hydraulic pump 204 includes a piston block 114 that may be formed in accordance with one or more embodiments described above, and may be attached at an outer diameter of the rotor 208, as indicated in
(33) Elements of the machine 200 that are referenced by the same or similar numbers correspond to the same or similar elements, and are configured in accordance with one or more embodiments described above. Thus, the motor 202 may be configured as an axial flux permanent magnet synchronous machine, an induction machine, or a reluctance machine, based on the choice of the rotor drive 118, for example. In the embodiment, the cam ring 112 is stationary relative to the rotator 208 and may be attached to the stator 206A and/or the stator 206B.
(34) The machine 200 generally operates in the same manner as the machine 100 by driving the fluid flows 172A and 172B in response to the rotation of the piston block 114 about the spindle axis 111 relative to the cam ring 112 (
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(36) At 224 of the method, a fluid flow is generated in response to step 222, such as the fluid flow 172A or 172B (
(37) The method of
(38) Some embodiments of the present disclosure are directed to a mobile vehicle 170 that supports the electric-to-hydraulic machine 100 or 200 and uses the one or more fluid flows 172 to operate one or more hydraulic actuators 176, such as shown in the example of
(39) Although the embodiments of the present disclosure have been described with reference to preferred embodiments, workers skilled in the art will recognize that changes may be made in form and detail without departing from the spirit and scope of the present disclosure.