INDUCTION MOTOR FOR A WORK MACHINE
20170096072 ยท 2017-04-06
Assignee
Inventors
Cpc classification
B60L50/13
PERFORMING OPERATIONS; TRANSPORTING
H02K7/006
ELECTRICITY
H02P25/22
ELECTRICITY
International classification
H02P25/22
ELECTRICITY
Abstract
A work machine may include a drive mechanically associated with a plurality of ground engaging elements. A 4-phase/4-sub-phase motor may be operatively associated with the drive and may include a stator, a rotor, and a 3-to-4 phase inverter. The stator may include a plurality of stator coils. The rotor may be operatively associated with the drive and may include a plurality of permanent magnets. The 3-to-4 phase inverter may be configured to provide alternating 4-phase and 4-sub-phase signals to the plurality of stator coils to produce magnetic flux with the plurality of permanent magnets to rotate the rotor.
Claims
1. A work machine, the work machine comprising: a plurality of ground engaging elements; a drive mechanically associated with the plurality of ground engaging elements; and a 4-phase/4-sub-phase motor operatively associated with the drive, the 4-phase/4-sub-phase motor including a stator, a rotor, and a 3-to-4 phase inverter, the stator including a plurality of stator coils, the rotor operatively associated with the drive and including a plurality of permanent magnets, the 3-to-4 phase inverter configured to provide alternating 4-phase and 4-sub-phase signals to the plurality of stator coils producing magnetic flux with the plurality of permanent magnets to rotate the rotor.
2. The work machine of claim 1, further including an engine mechanically associated with a generator, the generator in electrical communication with a control system, the control system in electrical communication with the 3-to-4 phase inverter.
3. The work machine of claim 2, wherein the control system includes a power inverter in electrical communication with the generator and the 3-to-4 phase inverter, the power inverter configured to convert direct current received from the generator to 3-phase alternating current to supply the 3-to-4 phase inverter, the 3-to-4 phase inverter configured to convert the 3-phase alternating current to 4-phase/4-sub-phase alternating current signals.
4. The work machine of claim 2, wherein the control system includes a rectifier and a power inverter in electrical communication with the 3-to-4 phase inverter, the rectifier in electrical communication with the generator and the power inverter, the rectifier configured to convert alternating current received from the generator to direct current to supply the power inverter, the power inverter configured to convert the direct current received from the rectifier to 3-phase alternating current to supply the 3-to-4 phase inverter, the 3-to-4 phase inverter configured to convert the 3-phase alternating current to 4-phase/4-sub-phase alternating current signals.
5. The work machine of claim 1, wherein the plurality of stator coils includes thirty-six stator coils.
6. The work machine of claim 1, wherein the plurality of permanent magnets includes forty-eight permanent magnets.
7. The work machine of claim 1, wherein the plurality of stator coils are grouped into first through eighth grouped stator coils.
8. The work machine of claim 7, wherein the first grouped stator coils is associated with a phase A, the second grouped stator coils is associated with a sub-phase A, the third grouped stator coils is associated with a phase B, the fourth grouped stator coils is associated with a sub-phase B, the fifth grouped stator coils is associated with a phase C, the sixth grouped stator coils is associated with a sub-phase C, the seventh grouped stator coils is associated with a phase D, and the eighth grouped stator coils is associated with a sub-phase D.
9. The work machine of claim 8, wherein the phase A excitation signal is at 0, the sub-phase A excitation signal is at 45, the phase B excitation signal is at 90, the sub-phase B excitation signal is at 135, the phase C excitation signal is at 180, the sub-phase excitation signal is at 225, the phase D excitation signal is at 270, and the sub-phase D excitation signal is at 315.
10. A 4-phase/4-sub-phase motor for a work machine, the 4-phase/4-sub-phase motor comprising: a stator; a rotor encircled by and in operative association with the stator; a plurality of stator coils disposed on the stator, each stator coil radially arranged and evenly spaced apart from each other; a plurality of permanent magnets disposed on the rotor, each permanent magnet radially arranged and evenly spaced apart from each other; and a 3-to-4 phase inverter in electrical communication with the plurality of stator coils and configured to provide alternating 4-phase and 4-sub-phase signals to the plurality of stator coils producing magnetic flux with the plurality of permanent magnets to rotate the rotor.
11. The 4-phase/4-sub-phase motor of claim 10, wherein the plurality of stator coils are grouped into first through eighth grouped stator coils.
12. The 4-phase/4-sub-phase motor of claim 11, wherein the first grouped stator coils is associated with a phase A, the second grouped stator coils is associated with a sub-phase A, the third grouped stator coils is associated with a phase B, the fourth grouped stator coils is associated with a sub-phase B, the fifth grouped stator coils is associated with a phase C, the sixth grouped stator coils is associated with a sub-phase C, the seventh grouped stator coils is associated with a phase D, and the eighth grouped stator coils is associated with a sub-phase D.
13. The 4-phase/4-sub-phase motor of claim 12, wherein the phase A excitation signal is at 0, the sub-phase A excitation signal is at 45, the phase B excitation signal is at 90, the sub-phase B excitation signal is at 135, the phase C excitation signal is at 180, the sub-phase excitation signal is at 225, the phase D excitation signal is at 270, and the sub-phase D excitation signal is at 315.
14. The 4-phase/4-sub-phase motor of claim 10, wherein the plurality of stator coils includes thirty-six stator coils.
15. The 4-phase/4-sub-phase motor of claim 10, wherein the plurality of permanent magnets includes forty-eight permanent magnets.
16. A method for achieving a desired torque density in a work machine, the method comprising: providing a 4-phase/4-sub-phase motor to drive a plurality of ground engaging elements of the work machine; and configuring a 3-to-4 phase inverter of the 4-phase/4-sub-phase motor to provide alternating 4-phase and 4-sub-phase signals to a plurality of stator coils of the 4-phase/4-sub-phase motor producing magnetic flux with a plurality of permanent magnets of the 4-phase/4-sub-phase motor to rotate a rotor of the 4-phase/4-sub-phase motor.
17. The method of claim 16, further including grouping the plurality of stator coils into first through eighth grouped stator coils.
18. The method of claim 17, further including configuring the 3-to-4 phase inverter to supply a phase A excitation signal to the first grouped stator coils, a sub-phase A excitation signal to the second grouped stator coils, a phase B excitation signal to the third grouped stator coils, a sub-phase B excitation signal to the fourth grouped stator coils, a phase C excitation signal to the fifth grouped stator coils, a sub-phase C excitation signal to the sixth grouped stator coils, a phase D excitation signal to the seventh grouped stator coils, and a sub-phase D excitation signal to the eighth grouped stator coils.
19. The method of claim 16, further including providing the plurality of stator coils with thirty-six stator coils.
20. The method of claim 19, further including providing the plurality of permanent magnets with forty-eight permanent magnets.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
[0016] Referring now to
[0017] With reference to
[0018] The control system 22 may include a controller 28, which may be any electronic controller or computing system including a processor which operates to perform operations, executes control algorithms, stores data retrieves data, gathers data, and/or performs any other computing or controlling task or function desired. The controller 28 may be a single controller or may include more than one controller configured to control various functions and/or features of the work machine 10. Functionality of the controller 28 may be implemented in hardware and/or software. As such, the controller 28 may include internal memory and/or the controller 28 may be otherwise connected to external memory, such as a database or server. The internal memory and/or external memory may include, but are not limited to including, one or more of read only memory (ROM), random access memory (RAM), a portable memory, and the like. Such memory media are examples of nontransitory memory media.
[0019] Furthermore, the control system 22 may include a power inverter 30 that is operatively associated with the controller 28. The power inverter 30 may be in electrical communication with and receive direct current from the generator 20 to convert into alternating current, which is provided to the plurality of motors 24. In an alternative embodiment, the control system 22 may further include a rectifier 32, also operatively associated with the controller, such that when the generator 20 is a traction alternator the rectifier 32, being in electrical communication therewith, receives and converts the alternating current from the traction alternator into direct current, some of which is received by the power inverter 30 for conversion back to alternating current, which is directed to the plurality of motors 24. The plurality of motors 24 may include a first motor 34 and a second motor 36, each of which may include a 3-to-4 phase inverter 38 in electrical communication with the power inverter 30 for receiving and converting the 3-phase alternating current signal from the power inverter 30 to 4-phase/4-sub-phase alternating current signals.
[0020] Both the first and the second motors 34, 36 may be mechanically associated with a first drive 40 and a second drive 42, respectively, of the plurality of drives 26. The first and second drives 40, 42, in turn, are mechanically associated with respective ground engaging elements of the plurality of ground engaging elements 14 via components such as, but not limited to, axles, gearboxes, and the like, to propel the work machine 10.
[0021] Moreover, both the first and the second motors 34, 36 may be an 8-phase induction traction motor or, more specifically, a 4-phase/4-sub-phase induction traction motor. However, it will be appreciated that other multi-phase motors may also be used. As illustrated in
[0022] As illustrated in the modified Wye connection diagram of both the first and second motors 34, 36 of
[0023] The first grouped stator coils 52 may be coupled to a first communication signal line 84 via a first breaker 86. The second grouped stator coils 54 may be couple to a second communication signal line 88 via a second breaker 90. The third grouped stator coils 56 may be coupled to a third communication signal line 92 via a third breaker 94. The fourth grouped stator coils 58 may be coupled to a fourth communication signal line 96 via a fourth breaker 98. The fifth grouped stator coils 60 may be coupled to a fifth communication signal line 100 via a fifth breaker 102. The sixth grouped stator coils 62 may be coupled to a sixth communication signal line 104 via a sixth breaker 106. The seventh grouped stator coils 64 may be coupled to a seventh communication signal line 108 via a seventh breaker 110. The eighth grouped stator coils 66 may be coupled to an eighth communication signal line 112 via an eighth breaker 114. Each of the first through eighth communication signal lines 84, 88, 92, 96, 100, 104, 108, 112 may be coupled to the 3-to-4 phase inverter 38, which is also coupled to ground 116.
[0024] With reference to
[0025] As illustrated in
INDUSTRIAL APPLICABILITY
[0026] In operation, the present disclosure may find applicability in many industries including, but not limited to, earthmoving equipment and drive systems for same. As one detailed example, the work machine 10 may be a large mining truck, as illustrated in
[0027] In such a manner, the first and the second motors 34, 36 may reach an increased torque density with less electrical power in a shorter amount of time such that the work machine 10 may move from a stationary position in a quicker amount of time. Moreover, the first and the second motors 34, 36 may include a more consistent magnetic flux, over conventional 3-phase motors, such that enhanced reduction of phase errors may be provided as a result of substantially continuous rotor rotation when at run speeds.
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