Title of Invention

BELT ALTERNATOR STARTER MOTOR GENERATOR FOR HYBRID VEHICLES

Abstract A stator assembly comprises a stator defining S slots. First and second windings are arranged in each of the S slots. The two windings have a width in a radial direction and a thickness in a direction perpendicular to the radial direction. A ratio of the width to the thickness is between 3.0:1 and 4.5:1.
Full Text Attorney Docket No. P002008-PTH-CD
HDP Ref. No. 8540P-000627
BELT ALTERNATOR STARTER MOTOR GENERATOR
FOR HYBRID VEHICLES
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application claims the benefit of U.S. Provisional
Application No. 60/952,432, filed on July 27, 2007. The disclosure of the above
application is incorporated herein by reference in its entirety.
FIELD
[0002] The present disclosure relates to electric machines, and more
particularly to a belt alternator starter (BAS) motor generator for hybrid vehicles.
BACKGROUND
[0003] The statements in this section merely provide background
information related to the present disclosure and may not constitute prior art.
[0004] Hybrid powertrains typically include a first torque generator,
such as an internal combustion engine (ICE), and a second torque generator,
such as an electric machine (EM). Both can provide torque to a driveline to
propel a vehicle.
[0005] In a full hybrid powertrain, the EM can drive the drivetrain
directly, without transferring torque through a component of the ICE. In a mild
hybrid powertrain, the EM is coupled with the ICE, through the accessory drive.
Torque generated by the EM is transferred to the drivetrain through the ICE. An
exemplary mild hybrid powertrain includes a belt alternator starter (BAS) system.

In the BAS system, the EM is coupled to the ICE via a traditional belt and pulley
configuration, which drives other accessory components including, but not limited
to, pumps and compressors.
[0006] Because the EM adds weight and cost to the vehicle, the
efficiency of the EM needs to be optimized.
SUMMARY
[0007] A stator assembly comprises a stator defining S slots. First and
second windings are arranged in each of the S slots. The first and second
windings have a width in a radial direction and a thickness in a direction
perpendicular to the radial direction. A ratio of the width to the thickness is
between 3.0:1 and 4.5:1.
[0008] In other features, the ratio is between 3.5:1 and 4.0:1. The ratio
is between 3.8:1 and 4.0:1. The ratio is approximately 3.9:1.
[0009] In other features, an electric machine comprises the stator
assembly. The electric machine is a 3-Phase electric machine. The first and
second windings are both connected to one of the three phases.
[0010] In other features, a permanent magnet electric machine
comprises the stator assembly and further comprises a rotor assembly including
rotor laminations defining poles each including a first "V"-shaped slot arranged
radially outside of a second "V"-shaped slot. Permanent magnet material is
arranged in the first and second "V"-shaped slots.

[0011] In other features, an induction machine comprises the stator
assembly and further comprises a rotor assembly including rotor laminations
defining poles.
[0012] In other features, the first and second windings comprise wave
windings with substantially rectangular conductors. The width of the first winding
plus the second winding is approximately equal to a width of the slots. The
thickness of the first winding is approximately equal to a width of the slots. S is
equal to 72.
[0013] Further areas of applicability will become apparent from the
description provided herein. It should be understood that the description and
specific examples are intended for purposes of illustration only and are not
intended to limit the scope of the present disclosure.
DRAWINGS
[0014] The drawings described herein are for illustration purposes only
and are not intended to limit the scope of the present disclosure in any way.
[0015] FIG. 1 is a functional block diagram of a vehicle comprising an
engine and transmission system with a belt alternator starter (BAS) electric
machine (EM) according to the present disclosure;
[0016] FIG. 2 is a side view of the BAS EM;
[0017] FIG. 3 is a plan view of a stator assembly and housing of the
BAS EM;

[0018] FIG. 4A is a cross-sectional view of rotor and stator assemblies
for a permanent magnet EM;
[0019] FIG. 4B is a cross-sectional view of rotor and stator assemblies
for an induction EM;
[0020] FIG. 5 is a plan view of a stator lamination; and
[0021] FIG. 6 is an enlarged view illustrating windings in a stator slot.
DETAILED DESCRIPTION
[0022] The following description is merely exemplary in nature and is
not intended to limit the present disclosure, application, or uses. It should be
understood that throughout the drawings, corresponding reference numerals
indicate like or corresponding parts and features.
[0023] As used herein, the term module refers to an application specific
integrated circuit (ASIC), an electronic circuit, a processor (shared, dedicated, or
group) and memory that execute one or more software or firmware programs, a
combinational logic circuit, or other suitable components that provide the
described functionality.
[0024] The present disclosure provides an improved stator assembly
design for permanent magnet and induction electric machines (EM). In addition,
rotor assemblies for the permanent magnet and induction EM are described
herein. For purposes of illustration, the EM may be used in a hybrid vehicle with
a belt alternator starter (BAS) system. However, the EMs described herein can
be used in other applications.

[0025] Referring now to FIG. 1, an exemplary hybrid powertrain 10 will
be described in detail. Although the exemplary powertrain 10 is illustrated as a
rear wheel drive (RWD) powertrain, the present disclosure applies to any other
powertrain configuration. The exemplary powertrain 10 includes a propulsion
system 12 and a drivetrain system 14. The propulsion system 12 includes an
engine 16 and an electric machine (EM) 18.
[0026] The propulsion system 12 can also include auxiliary
components including, but not limited to, an A/C compressor 20 and a steering
pump 22. The EM 18 and the auxiliary components are drivingly coupled to the
engine using a belt and pulley system 24. The belt and pulley system 24
includes a plurality of pulleys that are fixed for rotation with the EM 18, the
auxiliary components and the crankshaft 26 of the engine 16, as well as a belt to
enable torque to be transferred to/from the crankshaft 26 from/to the EM 18
and/or the auxiliary components. This configuration is referred to as a belt
alternator starter (BAS) system.
[0027] The crankshaft 26 of the engine 16 drives the drivetrain system
14. The drivetrain system 14 includes a flexplate or flywheel (not shown), a
torque converter or other coupling device 30, a transmission 32, a propeller shaft
34, a differential 36, axle shafts 38, brakes 40 and driven wheels 42. A
propulsion torque that is output at the crankshaft 26 of the engine 16 is
transferred through the drivetrain system components to provide axle torque at
the axle shafts 38 to drive the wheels 42. More specifically, propulsion torque is
multiplied by several gear ratios provided by the coupling device 30, the

transmission 32 and the differential 36 to provide axle torque at the axle shafts
38.
[0028] The powertrain 10 also includes a control module 50, which
regulates operation of the powertrain 10. Driver input 62 is transmitted to the
control module 50. The driver input 62 can include, but is not limited to, an
accelerator pedal and/or a cruise control system. A driver interface 64 also
provides input to the control module 50. The driver interface 64 includes, but is
not limited to, a transmission range selector (e.g., a PRNDL lever).
[0029] Referring now to FIGs. 2-6, exemplary embodiments of the EM
18 are shown. Both induction and permanent magnet EMs are shown. The
permanent magnet EM includes a stator core 100 (FIGs. 2 and 3), a stator
assembly 104 (FIGs. 3, 4A, 5 and 6) and a permanent magnet rotor assembly
108-1 (FIG. 4A). The induction EM includes a stator core 100 (FIGs. 2 and 3), a
stator assembly 104 (FIGs. 3, 4B, 5 and 6) and an induction rotor assembly 108-
2 (FIG. 4B).
[0030] In FIGs. 3, 4A, 5 and 6, the stator assembly 104 may comprise
a stator 112 defining slots 114 and windings 118 that are arranged in the slots
114. The stator 112 may comprise a plurality of stacked stator laminations 126.
The EM 18 may be a 3-Phase BAS motor generator.
[0031] In FIG. 5, one of the stator laminations 126 is shown. For
example only, the stator core 100 may comprise 72 slots. The stator lamination
126 may be made of a magnetic material. The magnetic material may comprise
M19 steel or another suitable magnetic material. The stator lamination 126 may

include a lamination coating 128 to reduce inter-laminar losses. The coating may
comprise a C5 or C6 coating.
[0032] In FIG. 6, the stator 112 may be bar wound. For example only,
the windings 118A and 118B may comprise two-layer wave winding with
rectangular conductors. The rectangular conductors may include radiused
corners. As can be appreciated, the windings 118A and 118B substantially fill
the slot to provide a high slot fill percentage.
[0033] Each slot 114 may receive two windings 118A and 118B having
the same phase. The stator may comprise 8 poles and 3 phases. Therefore,
each of the phases may be wound about the stator 8 times in groups of 3
adjacent slots. In other words, Phase A may occupy slots 1-3, followed by Phase
B in slots 4-6 and Phase C in slots 7-9. The Phases A-C repeat this pattern 7
additional times.
[0034] The windings 118A and 118B may have a generally rectangular
cross-sectional shape with a width A and a thickness B. The ratio of the width A
to the thickness B may be between 3.0:1 and 4.5:1. More particularly, the ratio of
the width A to the thickness B may be between 3.5:1 and 4.0:1. More
particularly, the ratio of the width A to the thickness B may be between 3.8:1 and
4.0:1. More particularly, the ratio of the width A to the thickness B may be
approximately 3.9:1. As used herein, "approximately 3.9:1" comprises between
3.85:1 and 3.95:1. The windings 118 may be coated with a winding coating 129.
The winding coating 129 may comprise an inverter grade coating. For example

only, the winding coating 129 may comprise varnish, polyamideimide, or other
suitable coating.
[0035] Insulation 130 may be arranged between the slots and the
windings 118A and 118B. The insulation 130 may be formed into an "S" shape.
The insulation 130 may comprise multiple layers. For example only, the layers
may comprise Nomex-Mylar-Nomex.
[0036] Referring back to FIG. 4A, the rotor assembly 108-1 may
comprise rotor laminations 140-1 and slots 142-1A and 142-1B (collectively slots
142-1). The rotor assembly 108-1 may comprise a (8 x 5 = 40) slot closed-slot
construction. The PM permanent magnet rotor 108-1 may comprise 5 slots per
pole, for an 8 pole rotor. Two "V"-shaped rotor slots 142-1A and 142-1B may
include permanent magnet material. For example, the permanent magnet
material may be similar to Hitachi magnet grade 38EH material.
[0037] A small slot 143 between a radially inner "V"-shaped slot 142-1B
may provide an air vent hole and weight reduction and may not include
permanent magnet material. The polarity for each pole alternates between north
and south. The polarity for the slots in FIG. 4A may be either north or south.
Both sides of the "V"-shaped magnet arrangement may have the same polarity.
In other words, the entire pole may be either north or south.
[0038] Referring now to FIG. 4B, the EM may comprise an induction
EM including the stator 104 and a rotor 108-2. The rotor assembly 108 may
comprise rotor laminations 140-2 and slots 142-2. For example only, the rotor
assembly 108-2 may comprise a 54 open slot construction. In other

implementations, the rotor slot count may be 56, 58 or 68. The rotor assembly
108-2 may comprise Aluminum bars in the slots 142-2 and end rings (not
shown). The Aluminum may comprise relatively pure Aluminum. The Aluminum
may have Aluminum content greater than 99%. The Aluminum content may be
greater than 99.7%.
[0039] The rotor laminations 140-2 may have one or more mass
reduction holes 145 located radially inside of a magnetic diameter of the rotor
assembly 108-2. The rotor laminations 140-2 may be made of a magnetic
material. The magnetic material may comprise steel. The steel may comprise
post-annealed M19 steel. The steel may be coated with a coating 148 to reduce
inter-laminar losses. The coating may be C5 or C6 coating. The rotor assembly
108-2 may support a skew of up to 1 slot and alternate end ring and bar
materials (including copper).
[0040] Those skilled in the art can now appreciate from the foregoing
description that the broad teachings of the disclosure can be implemented in a
variety of forms. Therefore, while this disclosure includes particular examples,
the true scope of the disclosure should not be so limited since other modifications
will become apparent to the skilled practitioner upon a study of the drawings, the
specification, and the following claims.

CLAIMS
What is claimed is:
1. A stator assembly comprising:
a stator defining S slots;
first and second windings are arranged in each of said S slots,
wherein said first and second windings have a width in a radial
direction and a thickness in a direction perpendicular to said radial direction, and
wherein a ratio of said width to said thickness is between 3.0:1 and
4.5:1.
2. The stator assembly of Claim 1 wherein said ratio is between 3.5:1
and 4.0:1.
3. The stator assembly of Claim 1 wherein said ratio is between 3.8:1
and 4.0:1.
4. The stator assembly of Claim 1 wherein said ratio is approximately
3.9:1.
5. An electric machine comprising the stator assembly of Claim 1
wherein said electric machine is a 3-Phase electric machine and wherein said
first and second windings are both connected to one of said three phases.

6. A permanent magnet electric machine comprising the stator
assembly of Claim 1 and further comprising a rotor assembly including rotor
laminations defining poles each including a first "V"-shaped slot arranged radially
outside of a second "V"-shaped slot, wherein permanent magnet material is
arranged in said first and second "V"-shaped slots.
7. An induction machine comprising the stator assembly of Claim 1
and further comprising a rotor assembly including rotor laminations defining T
slots, wherein S is equal to 72 and T is equal to one of 54, 56, 58 or 68.
8. The electric machine of Claim 1 wherein said first and second
windings comprise wave windings with substantially rectangular conductors.
9. The electric machine of Claim 1 wherein said width of said first
winding plus said second winding is approximately equal to a width of said slots
and wherein said thickness of said first winding is approximately equal to a width
of said slots.
10. The electric machine of Claim 1 wherein S is equal to 72.

11. A vehicle comprising:
an engine;
a belt/pulley;
an electric machine that is mechanically coupled by said belt/pulley
to said engine and that comprises:
a stator assembly comprising:
a stator defining S slots;
first and second windings arranged in said S slots,
wherein said first and second windings have a width
in a radial direction and a thickness in a direction perpendicular to said radial
direction, wherein said width of said first winding plus said second winding is
approximately equal to a width of said slots and wherein said thickness of said
first winding is approximately equal to a width of said slots; and
wherein a ratio of said width to said thickness is
between 3.0:1 and 4.5:1 and wherein said electric machine is a 3-Phase electric
machine and wherein said first and second windings are both connected to one
of said three phases.
12. The vehicle of Claim 11 wherein said ratio is between 3.5:1 and
4.0:1.
13. The vehicle of Claim 11 wherein said ratio is between 3.8:1 and
4.0:1.

14. The vehicle of Claim 11 wherein said ratio is approximately 3.9:1.
15. The vehicle of Claim 11 wherein said first and second windings
comprise wave windings with substantially rectangular conductors.
16. The vehicle of Claim 11 wherein S is equal to 72.
17. The vehicle of Claim 11 wherein said electric machine comprises a
permanent magnet electric machine, wherein said permanent magnet electric
machine comprises a rotor assembly including rotor laminations defining poles
each including a first "NT-shaped slot arranged radially outside of a second "V"-
shaped slot, wherein permanent magnet material is arranged in said first and
second "V"-shaped slots.
18. The vehicle of Claim 11 wherein said electric machine comprises
an induction machine, wherein said induction machine further comprises a rotor
assembly including rotor laminations defining T poles, where in S is equal to 72
and T is equal to one of the 54, 56, 58 or 68.

A stator assembly comprises a stator defining S slots. First and second
windings are arranged in each of the S slots. The two windings have a width in a
radial direction and a thickness in a direction perpendicular to the radial direction.
A ratio of the width to the thickness is between 3.0:1 and 4.5:1.

Documents:

01210-kol-2008-abstract.pdf

01210-kol-2008-claims.pdf

01210-kol-2008-correspondence others.pdf

01210-kol-2008-description complete.pdf

01210-kol-2008-drawings.pdf

01210-kol-2008-form 1.pdf

01210-kol-2008-form 2.pdf

01210-kol-2008-form 3.pdf

01210-kol-2008-form 5.pdf

01210-kol-2008-gpa.pdf

1210-KOL-2008-(05-06-2014)-ABSTRACT.pdf

1210-KOL-2008-(05-06-2014)-CLAIMS.pdf

1210-KOL-2008-(05-06-2014)-CORRESPONDENCE.pdf

1210-KOL-2008-(05-06-2014)-DESCRIPTION (COMPLETE).pdf

1210-KOL-2008-(05-06-2014)-DRAWINGS.pdf

1210-KOL-2008-(05-06-2014)-FORM-1.pdf

1210-KOL-2008-(05-06-2014)-FORM-2.pdf

1210-KOL-2008-(05-06-2014)-OTHERS.pdf

1210-KOL-2008-(28-08-2013)-ABSTRACT.pdf

1210-KOL-2008-(28-08-2013)-ANNEXURE TO FORM 3.pdf

1210-KOL-2008-(28-08-2013)-CORRESPONDENCE-1.pdf

1210-KOL-2008-(28-08-2013)-CORRESPONDENCE.pdf

1210-KOL-2008-(28-08-2013)-DESCRIPTION (COMPLETE).pdf

1210-KOL-2008-(28-08-2013)-DRAWINGS.pdf

1210-KOL-2008-(28-08-2013)-FORM-1.pdf

1210-KOL-2008-(28-08-2013)-FORM-2.pdf

1210-KOL-2008-(28-08-2013)-FORM-5.pdf

1210-KOL-2008-(28-08-2013)-OTHERS.pdf

1210-KOL-2008-(28-08-2013)-PETITION UNDER RULE 137.pdf

1210-KOL-2008-ASSIGNMENT.pdf

1210-KOL-2008-CORRESPONDENCE 1.1.pdf

1210-KOL-2008-CORRESPONDENCE.pdf

1210-kol-2008-form 18.pdf

1210-KOL-2008-TRANSLATED COPY OF PRIORITY DOCUMENT.pdf

abstract-01210-kol-2008.jpg


Patent Number 263043
Indian Patent Application Number 1210/KOL/2008
PG Journal Number 41/2014
Publication Date 10-Oct-2014
Grant Date 29-Sep-2014
Date of Filing 16-Jul-2008
Name of Patentee GM GLOBAL TECHNOLOGY OPERATIONS, INC.
Applicant Address 300 GM RENAISSANCE CENTER, DETROIT, MICHIGAN
Inventors:
# Inventor's Name Inventor's Address
1 JOHN C. MORGANTE 2905 LOCUST COURT STERLING HEIGHTS, MI 48314
PCT International Classification Number H02K1/27
PCT International Application Number N/A
PCT International Filing date
PCT Conventions:
# PCT Application Number Date of Convention Priority Country
1 12/130213 2008-05-30 U.S.A.
2 60/952432 2007-07-27 U.S.A.