CA1301242C - Automotive electrical system having a starter/generator induction machine - Google Patents

Automotive electrical system having a starter/generator induction machine

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Publication number
CA1301242C
CA1301242C CA000600035A CA600035A CA1301242C CA 1301242 C CA1301242 C CA 1301242C CA 000600035 A CA000600035 A CA 000600035A CA 600035 A CA600035 A CA 600035A CA 1301242 C CA1301242 C CA 1301242C
Authority
CA
Canada
Prior art keywords
voltage
machine
induction machine
generating
electrical system
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Expired - Fee Related
Application number
CA000600035A
Other languages
French (fr)
Inventor
Leroy E. Lakey
David A. Peter
David A. Chance
Stephen W. Anderson
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Motors Liquidation Co
Original Assignee
Motors Liquidation Co
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Motors Liquidation Co filed Critical Motors Liquidation Co
Application granted granted Critical
Publication of CA1301242C publication Critical patent/CA1301242C/en
Anticipated expiration legal-status Critical
Expired - Fee Related legal-status Critical Current

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Classifications

    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60KARRANGEMENT OR MOUNTING OF PROPULSION UNITS OR OF TRANSMISSIONS IN VEHICLES; ARRANGEMENT OR MOUNTING OF PLURAL DIVERSE PRIME-MOVERS IN VEHICLES; AUXILIARY DRIVES FOR VEHICLES; INSTRUMENTATION OR DASHBOARDS FOR VEHICLES; ARRANGEMENTS IN CONNECTION WITH COOLING, AIR INTAKE, GAS EXHAUST OR FUEL SUPPLY OF PROPULSION UNITS IN VEHICLES
    • B60K1/00Arrangement or mounting of electrical propulsion units
    • B60K1/04Arrangement or mounting of electrical propulsion units of the electric storage means for propulsion
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02PCONTROL OR REGULATION OF ELECTRIC MOTORS, ELECTRIC GENERATORS OR DYNAMO-ELECTRIC CONVERTERS; CONTROLLING TRANSFORMERS, REACTORS OR CHOKE COILS
    • H02P9/00Arrangements for controlling electric generators for the purpose of obtaining a desired output
    • H02P9/14Arrangements for controlling electric generators for the purpose of obtaining a desired output by variation of field
    • H02P9/26Arrangements for controlling electric generators for the purpose of obtaining a desired output by variation of field using discharge tubes or semiconductor devices
    • H02P9/30Arrangements for controlling electric generators for the purpose of obtaining a desired output by variation of field using discharge tubes or semiconductor devices using semiconductor devices
    • H02P9/305Arrangements for controlling electric generators for the purpose of obtaining a desired output by variation of field using discharge tubes or semiconductor devices using semiconductor devices controlling voltage
    • H02P9/307Arrangements for controlling electric generators for the purpose of obtaining a desired output by variation of field using discharge tubes or semiconductor devices using semiconductor devices controlling voltage more than one voltage output
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F02COMBUSTION ENGINES; HOT-GAS OR COMBUSTION-PRODUCT ENGINE PLANTS
    • F02NSTARTING OF COMBUSTION ENGINES; STARTING AIDS FOR SUCH ENGINES, NOT OTHERWISE PROVIDED FOR
    • F02N11/00Starting of engines by means of electric motors
    • F02N11/04Starting of engines by means of electric motors the motors being associated with current generators
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02JCIRCUIT ARRANGEMENTS OR SYSTEMS FOR SUPPLYING OR DISTRIBUTING ELECTRIC POWER; SYSTEMS FOR STORING ELECTRIC ENERGY
    • H02J7/00Circuit arrangements for charging or depolarising batteries or for supplying loads from batteries
    • H02J7/14Circuit arrangements for charging or depolarising batteries or for supplying loads from batteries for charging batteries from dynamo-electric generators driven at varying speed, e.g. on vehicle
    • H02J7/1469Regulation of the charging current or voltage otherwise than by variation of field
    • H02J7/1492Regulation of the charging current or voltage otherwise than by variation of field by means of controlling devices between the generator output and the battery
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02PCONTROL OR REGULATION OF ELECTRIC MOTORS, ELECTRIC GENERATORS OR DYNAMO-ELECTRIC CONVERTERS; CONTROLLING TRANSFORMERS, REACTORS OR CHOKE COILS
    • H02P9/00Arrangements for controlling electric generators for the purpose of obtaining a desired output
    • H02P9/04Control effected upon non-electric prime mover and dependent upon electric output value of the generator
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02PCONTROL OR REGULATION OF ELECTRIC MOTORS, ELECTRIC GENERATORS OR DYNAMO-ELECTRIC CONVERTERS; CONTROLLING TRANSFORMERS, REACTORS OR CHOKE COILS
    • H02P9/00Arrangements for controlling electric generators for the purpose of obtaining a desired output
    • H02P9/08Control of generator circuit during starting or stopping of driving means, e.g. for initiating excitation
    • YGENERAL 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
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02TCLIMATE CHANGE MITIGATION TECHNOLOGIES RELATED TO TRANSPORTATION
    • Y02T10/00Road transport of goods or passengers
    • Y02T10/60Other road transportation technologies with climate change mitigation effect
    • Y02T10/70Energy storage systems for electromobility, e.g. batteries

Abstract

AUTOMOTIVE ELECTRICAL SYSTEM HAVING
A STARTER/GENERATOR INDUCTION MACHINE

Abstract of the Disclosure A high efficiency automotive electrical system and method of control employing an asynchronous induction machine for performing both starting and generating functions. The induction machine is coupled to the engine through a bimodal gearset which operates as a reduction drive during the starting mode and as a direct drive during the generating mode. A
computer-based controller responsive to the battery voltage and the speed of the induction machine maintains given voltage/frequency ratios during both starting and generating to provide efficient operation, and smoothly controls the transition between starting and generating modes. The vehicle electrical loads are supplied at one or more stable voltages produced by a load converter powered by the battery.

Description

~3(~Z42 AUTOMOTIVE ELECTRICAL SYSTEM HAVING
A STARTER/GENERATOR INDUCTION MACHINE

This invention pertains to an automotive electrical system employing a single electrical machine for both starting and generating functions, and more particularly to a system in which the machine is an induction machine.

Background of the Invention Conventional electrical systems for automobiles employing internal combustion engines, generally include one electrical machine (cranking motor) operated as a motor for cranking the engine during starting, and a separate electrical machine (generator/alternator) for generating electricity during operation of the engine.
Over the years, various arrangements have been proposed for performing both starting and generating functions with a single electrical machine, but such arrangements generally suffer from compromised performance or greatly increased complexity, as compared to the systems they replace. Moreover, such arrangements typically do not address the problem of load voltage variation.
Summary of the Present Invention The present invention is directed to a high efficiency automotive electrical system and method of control employing an asynchronous induction machine for performing both starting and generating functions. The induction machine is coupled to the engine through a ~3~12~Z

bimodal gearset Eor bi-directional mechanical energy exchange. The bimodal drive operates as a reduction drive during the starting mode and as a direct drive during the generating mode. A bi-directional multi-phase bridge couples the induction machine to the vehicle storage battery for bi-directional electrical energy exchange, and a load converter couples the storage battery to the vehicle electrical loads for energizing the loads with current at predefined, steady voltages.
A computer-based machine controller adjusts the machine excitation amplitude and frequency through the bi-directional bridge to optimize the machine operating efficiency at the desired output level. A
computer-based system controller schedules the desired output of the machine as a function of various system parameters, including battery state of charge and the engine operating mode.

Brief Description of the Drawings Figure 1 is a block diagram of an automotive electrical system configured according to the present invention, including a computer-based SYSTEM CONTROL
UNIT, a computer-based 3-PHASE PWM GENERATOR, an induction machine and a bimodal drive coupling the induction machine to the automotive engine.
Figure 2 is a schematic representation of the induction machine and bimodal drive of Figure 1.
Figures 3, 10, 11 and 12 depict circuit diagrams for various blocks set forth in Figure 1.

13C~

Figures 4, 5a, 5b, and 6 depict flow diagrams representative of computer program instructions executed by the SYSTEM CONTROL UNIT of Figure 1.
Figure 7 depicts a flow diagram representative of computer program instructions executed by the 3-PHASE PWM GENERATOR of Figure 1.
Figures 8 and 9 depict data used by the PWM
GENERATOR of Figure 1 in scheduling the motor voltage waveforms.
Figure 13 is a graph depicting the increased generating capacity of the system of this invention, as compared to a conventionally controlled generator.

Detailed Description of the Drawings Referring now particularly to Figure 1, the reference numeral 10 generally designates an automotive electrical system including a storage battery 12 and a plurality of switched electrical loads symbolized by the resistor 14 and the series switch 16. The system 10 additionally includes a 3-phase induction machine 18, which i5 selectively operated in a motoring mode for cranking the internal combustion engine 20, or a generating mode for supplying electrical current to the battery 12 and electrical loads 14. To this end, the engine 20 is mechanically coupled to the induction machine 18 by the combination of a belt drive 22 and a bimodal planetary drive 24, described below in reference to Figure 2.
The control system for governing the operation of the above-described system components is designated generally by the reference numeral 25. The battery voltage Vb is supplied directly to bridge circuit 26, ~3~)12~2 and via an ignition switch 28 to load converter 30, power supply 32, a computer-based SYSTEM CONTROL UNIT
34 and the gate driver circuits 38. Regulated output voltages from power supply 32 are supplied to a computer-based 3-phase PWM GENERATOR 36, the gate driver circuit 38 and the SYSTEM CONTROL UNIT 34, as indicated. As described below, the battery voltage is controlled in relation to battery charging requirements, but the load converter 30 (illustrated as a conventional buck converter) supplies a lower, fixed output voltage to the loads 14. Multiple load converter units may be employed for providing multiple load voltages if desired, as indicated by the block 30'.
The rotary speed of induction machine 18 is sensed by a pulse-type tachometer 40, such as the Hewlett Packard HEDS-5500. The tachometer output is provided as an input to SYSTEM CONTROL UNIT 34 along with the battery voltage Vb, an ON/OFF input and a START input. The ON/OFF input enables/disables system operation and the START input enables initiation of engine cranking.
In response to the above inputs, the SYSTEM
CONTROL UNIT 34 determines whether the motoring or generating mode is appropriate, determines the desired excitation and slip, and outputs amplitude and power frequency control signals A, POWERF to 3-PHASE PWM
- GENERATOR 36 on lines 42 and 44, respectively.
In the cranking mode, the excitation is ramped up to an optimum level for motoring for smooth quiet starting of the engine 20. Once the engine 20 has started and the generating mode is engaged, the ~3(~124~

excitation amplitude is ramped up to an optimum generating level for a smooth transition between starting and generating. In this mode, the power frequency is computed according to the sum of the machine rotor speed ROTORSPD and a slip command 5LPCMD
determined in relation to the amount by which the actual battery voltage Vb differs from a desired voltage reference.
Internally, the SYSTEM CONTROL UNIT 34 comprises a number of conventional devices including an input/output device I/O, a timer/counter device TMR/CTR and a microcomputer uC, all of which are connected to a bus 52. The I/O device receives the ON/OFF, ST and Vb inputs and generates a machine amplitude command A. The TMR/CTR device operates as an input counter for the TACH signal and as an output counter for the PWMPER output. The TMR/CTR also performs a loop timing function as indicated by the line 54 and as described below. Flow diagrams representative of the program instructions executed by the microcomputer uC in carrying out the control functions referred to above are set forth in Figures 4, 5a, 5b and 6.
The 3-PHASE PWM GENERATOR 36 executes a sine function look-up, and provides six low level (5-volt) PWM drive signals to the gate driver circuit 38 on lines 56 - 66 in accordance with the excitation amplitude and power frequency signals A, POWERF
supplied by the SYSTEM CONTROL UNIT 34. Internally, the 3-PHASE PWM GENERATOR 36 comprises a number of conventional devices including a microcomputer uC, three PWM driver devices PWM1, PWM2, PWM3 and a clock ~3~1~42 C. The PWM1 driver generates the drive signals for the upper and lower switching devices of Phase 1 on lines 56 and 58; the PWM2 driver generates the drive signals for the upper and lower switching devices of Phase 2 on lines 60 and 62; and the PWM3 driver generates the drive signals for the upper and lower switching devices of Phase 3 on lines 64 and 66. The PWM pulse width commands are supplied from the microcomputer uC to the PWM drivers PWM1, PWM2, PWM3 via data bus 68 and device select and handshake line 70. The clock C supplies the PWM drivers with a high frequency clock signal for resolving the PWM pulse width commands. Flow diagrams representative of the program instructions executed by the microcomputer uC in carrying out the control functions referred to above are set forth in Figure 7.
The gate driver circuits 38 convert the low level PWM drive signals on lines 56 - 66 to isolated high level (16-volt) signals on lines 72 - 82 for driving the switching devices of bridge circuit 26.
Bridge circuit 26 is configured for 3-phase full-wave current control of the induction machine 18.
In the cranking mode, it excites the 3-phase windings of machine 18 with sinusoidal current of the desired amplitude and frequency from storage battery 12. In the generating mode, it draws sinusoidal load current of the desired amplitude and frequency from machine 18.
The induction machine 18 and bimodal drive 24 are depicted in greater detail in Figure 2. As seen in that Figure, the induction machine housing 90 and bimodal drive housing 92 are joined at 94 and adapted to be mounted to engine 20 at the flange 96.
Alternately, the drive 24 could be driven directly by ~3~1Z4X

the engine crankshaft. The housing 90 supports the stator windings and laminations 98, 100 of machine 18, and the housing 92 supports the ring gear 102 of bimodal drive 24. The outboard end of the machine S rotor 104 is rotatably supported by the housing 90 on a ball bearing 106 and drives the tachometer 40 which is mounted on the outboard end of housing 90 as shown.
The inboard end of rotor 104 is rotatably supported within the output shaft 108 on a sleeve bearing 109 and a one-way clutch 11 O. The inboard end of output shaft 108 is rotatably supported by a two-stage planetary gearset 112 on the sleeve bearing 114 and the one-way clutch 116, and the outboard end of output shaft 108 is rotatably supported by a ball bearing 118 mounted in the housing 92.
The two-stage planetary gearset 112 and one-way clutches 110, 116 serve to mechanically couple the motor rotor 104 and the bimodal drive output shaft 108. The output shaft 108 is coupled to the engine crankshaft via a 3:1 belt drive 22, as indicated in Figure 1. A sun gear 120 pressed onto an intermediate portion of the rotor shaft 104 meshes with the planet gears 122, which in turn mesh with a ring gear 124 mounted on the inner circumference of housing 92. A
25 planet carrier 126 and integral sun gear 128 is supported on the output shaft 108 via the sleeve bearing 114. The sun gear 128 meshes with the planet gears 130, which in turn mesh with the ring gear 102.
The planet carrier 132 is coupled to the output shaft 30 108 via the one-way clutch 116. A sleeve bearing 134 supports the planet carrier 132 with respect to the housing 92.

13~12~Z

In engine cranking, the machine 18 is operated as a motor, and the bimodal drive 24 establishes a 10:1 reduction ratio between the rotor and output shafts 104, 108. In this condition, the two-stage planetary gearset 112 is coupled to the output shaft 108 via one~way clutch 116 and the one-way clutch 110 overruns.
Once the engine 20 has started, the output shaft 108 drives the rotor shaft 104 directly via one-way clutch 110 and the one-way clutch 116 overruns.
At such point, the machine 18 is operated as a generator for producing electrical energy for battery charging and load energization.
The power supply circuit 32 of Figure 1 is depicted in detail in Figure 3. As indicated in Figure 1, the power supply circuit 32 generates a source of 5 VDC for the computer-based controllers 34, 36, and four isolated sources of 16 VDC for the gate driver circuits 38, using the single battery voltage input Vb.
The 5 VDC power supply circuit, designated by the reference numeral 140, is defined simply by the voltage regulator 142, the resistive voltage divider 144 and the output filter capacitor 146. The battery voltage Vb~ filtered by the capacitor 147, is supplied as the input voltage to regulator 142.
The 16 VDC power supply circuits comprise an oscillator circuit 150, a transformer 152 and four isolated voltage regulator circuits 154, 156, 158, 160.
The oscillator circuit 150 drives the primary winding 162 of transformer 152, and each regulator circuit 154, 30 156, 158, 160 is supplied by a transformer secondary winding 164, 166, 168, 170.

:13C~12~;~

The oscillator circuit 150 is built around a timer/oscillator chip 172 (such as the LM555 or equivalent) and associated RC elements 174 which generate a square wave output of approximately 50 kHz S on line 176. The square-wave output is applied to the inverting input of comparator 178 via resistor 180.
The inverting comparator input is supplied with an offset reference voltage generated by the resistive voltage divider 182. The output of comparator 178 is applied as an input to the bu~fer amplifier 184 via a voltage limiting network 186, and the buffer amplifier output, in turn, is applied as an input to the transistor driver pair 188 via the resistor 190. The emitters of the transistors defining the driver pair 188 are joined and connected as an input to power FET
192 via the resistor 194, the source-drain circuit of which is connected in series with the transformer primary winding 162. Thus connected, the above-described elements operate to drive the primary winding 162 with alternating current at the oscillator output frequency of 50 kHz.
The voltage regulator circuits 154, 156, 158, 160 are identical. The turn ratio of each secondary winding 164, 166, 168, 170 with respect to the primary winding 162 is chosen to develop an output voltage of 16 volts DC. Referring to the circuit 154, it will be seen that each regulator circuit comprises a diode rectifier 196 connected in series with the respective secondary winding 164, a filter capacitor 198, a voltage regulator 200 with resistive divider 202 and an output filter capacitor 204. As indicated above, the transformer 152 provides isolation between each of the ~3(~

16 VDC power supply circuits 154, 156, 158, 160. The v~rious 16 VDC outpu~ voltages are designated herein as A+, A-, B~, B-, C~, C-, D+ and D-.
Flow diagrams representative of the program instructions executed by the microcomputer uC of SYSTEM
CONTROL UNIT 34 in carrying out the functions referred to above are depicted in Figures 4, 5a, 5b and 6. The flow diagram of Figure 4 depicts a main loop or executive program which reads input values, generates outputs and commands the execution of various routines.
The flow diagram of Figures 5a and 5b represent a SYSTEM SUPERVISOR routine and the flow diagram of Figure 6 represents a MACHINE CONTROL routine.
Referring to the main loop flow diagram of Figure 4, the reference numeral 214 designates a series of instructions executed at the initiation of each period of vehicle operation for initializing the various registers, timers, flags and variables to an initial condition. Thereafter, the decision block 216 is executed to determine if the SCAN bit is set. The SC~N bit refers to an input latch of the SYSTEM CONTROL
UNIT TMR/CTR device which receives the low frequency (10 Hz) scan pulses on line 54. The SCAN bit is set on each rising edge of a scan pulse, signaling another execution of the main loop program. As soon as the SCAN bit is set, the instruction blocks 218 - 226 are executed to clear the SCAN bit, to output the most recent amplitude and frequency values A, POWERF, to read new input values and to execute the SYSTEM
SUPERVISOR and MACHINE CONTROL routines. The amplitude command A is generated in the form of an eight-bit word, and the power frequency command POWERF is 13(~4~

generated by TMR/CTR in the form of a square wave having a frequency of cixteen times the desired power frequency The factor of sixteen is used to facilitate generation of sixteen segment sinusoidal gate drive signals by the 3-PHASE PWM GENERATOR 36, as described - below. The above process is then repeated, as indicated by the flow return line 228.
Referring now to the S~STEM S~PERVISOR routine flow diagrams of Figures 5a and 5b, the decision block 230 is first executed to determine if the ON/OFF input is set to ON. If not, the instruction block 232 is executed to set the OFF MODE FLAG and the flow diagram portion 234 is executed to set up the OFF mode conditions and to determine if a transition to the motoring mode is appropriate. Instruction block 235 sets the excitation term EXCIT and the slip command SLIP CMD to zero. However, if both the ON/OFF and START bits are set, as determined by decision blocks 236 and 238, the instruction block 240 is executed to set the MOTOR TRANSITION MODE FLAG so that a transition to the motoring mode of machine 18 will occur in the next execution of the system supervisor routine. If the decision block ~30 determines that the ON/OFF bit is set and the decision block 242 determines that the OFF MODE FLAG is also set, the flow diagram portion 234 is executed as described above to determine if transition to the motoring mode is appropriate.
If the ON/OFF bit is set and the OFF MODE FLAG
is not set, the decision block 242 is executed to determine if the MOTOR TRANSITION FLAG is set. If so, the flow diagram portion 246 is executed to set up the motor transition conditions and to ramp up the machine 13~242 excitation to a value of 0.6 volts/Hz. Thus, the i~struction block 248 sets the machine slip command to 30 Hz and increments the excitation variable EXCIT from its initial zero value. When the excitation value reaches 0.6 volts/Hz as determined at decision block 250, the instruction block 252 is executed to clear the MOTOR TRANSITION MODE FLAG and to set the MOTOR MODE
FLAG.
In the next execution of the system supervisor routine following execution of the instruction block 252, the decision block 244 is answered in the negative and the decision block 254 is answered in the affirmative. At such point, the flow diagram portion 256 is executed to set up the motoring conditions and to determine if a transition to the generate mode is appropriate. To this end, the instruction block 258 sets the slip command to 30 Hz and the excitation EXCIT
to 0.6 volts/Hz, and the decision block 260 determines if the TACH frequency signal from tachometer 40 is greater than a reference frequency START REF
characteristic of engine starting. When the engine starts, decision block 260 will be answered in the affirmative and the instruction block 262 executed to set the slip command and excitation terms to zero, to clear the MOTOR MODE FLAG and to set the GENERATE
TRANSITION MODE FLAG.
In the next execution of the SYSTEM SUPERVISOR
routine following the execution of instruction block 262, the decision block 254 is answered in the negative and the decision block 264 is answered in the affirmative. At such point, the flow diagram portion 266 is executed to ramp up the machine excitation to ~3~1Z~2 the normal generating mode value. To this end, the instruction block 268 is executed to increment the excitation term EXCIT and the instruction block 274 is executed to set the slip command in relation to the difference between the actual battery voltage Vb and the desired battery voltage V f. Once the excitation EXCIT is increased to the nominal generating value of 0.3 volts/Hz, as determined by decision block 270, the instruction block 272 is executed to clear the GENERATE
TRANSITION MODE FLAG to set the GENERATE MODE FLAG.
In the next execution of the SYSTEM SUPERVISOR
routine following the execution of the instruction block 272, the decision block 264 will be answered in the negative and the decision block 276 will be answered in the affirmative. At such point, the excitation term EXCIT is maintained at the value 0.3 volts/Hz and the slip command continues to be determined as a function of the battery voltage error as indicated at instruction block 274. If the decision block 276 is answered in the negative, the instruction block 278 is executed to set the OFF MODE FLAG, completing the routine.
~ eferring now to the MACHINE CONTROL routine of Figure 6, the instruction blocks 280 and 282 are executed to compute the power frequency,POWERF and amplitude command A in accordance with the excitation and slip command terms determined by the SYSTEM
SUPERVISOR routine. As indicated at instruction block 280, the power frequency term POWERF is determined to the sum of the rotor frequency from tachometer 40 and the slip command frequency determined by the SYSTEM
SUPERVISOR routine. As indicated at instruction block ~3C~2~

282, the amplitude command A is determined to the p~oduct of the power fEequency POWERF and the excitation term EXCIT determined by the SYSTEM
SUPERVISOR routine, divided by the battery voltage Vb-This results in a dimensionless fractional number whichhas a minimum value of zero and a maximum value of unity.
The flow diagrams of Figure 7 is representative of the computer program instructions executed by the microcomputer Uc of the THREE-PHASE PWM
GENERATOR 36. As indicated above, the THREE-PHASE PWM
GENERATOR 36 operates in response to the power frequency and amplitude POWERF, A signals from the SYSTEM CONTROL UNIT 34 to generate the six PWM drive signals on lines 56 - 66. Execution of the routine is triggered by a leading edge transition of the power frequency signal POWERF, as indicated by the decision block 290.
Since the frequency command supplied to the 3-PHASE GENERATOR 36 is 16 times the desired power frequency POWERF, the flow diagram of Figure 7 is executed 16 times per period of the power frequency.
This effectively divides the period of the power frequency into sixteen increments of 22.5 electrical degrees. For each such increment, the 3-PHASE
GENERATOR 36 outputs 3-phase PWM duty cycle commands to the PWM drivers PWM1, PWM2, PWM3 according to the product of the amplitude command A and a sine function look-up. The PWM driver outputs, in turn, control the switching devices of the bridge circuit 26 to produce sinusoidal three-phase power voltages and currents in the stator windings of machine 18.

'I 31:~2~Z

The frequency command increments a sixteen c~unt counter (COUNT). The sine function look-up, in turn, generates sine factors for the three machine phases SIN1, SIN2, SIN3 based on the COUNT value.
Representative sine factors and the corresponding COUNT
value are depicted in the chart of Figure 8.
The PWM duty cycles PWMDC1, PWMDC2, PWMDC3 are then determined according to the expressions:

PWMDC1 = l(A * SIN1)/2] ~ 0.50 PWMDC2 = [(A * SIN2)/2] + 0.50 PWMDC3 = [(A * SIN3)/2] ~ 0.50 where the amplitude A and the respective sine factor SIN1, SIN2, SIN3 each vary between ~ero and one. A
duty cycle offset of 50 percent is employed since zero excitation of the machine occurs when all three phases are operating at a duty cycle of 50 percent. Duty cycles greater than 50 percent produce a positive output voltage; duty cycles less than 50 percent produce a negative output voltage. The three-phase PWM
duty cycles for a complete cycle of the power frequency POWERF are graphically depicted in Figure 9.
Referring to the flow diagram, the instruction blocks 292 and 294 are first executed to read the amplitude term A and to increment the counter term COUNT. The blocks 296 - 300 are then executed to look-up the phase-one sine factor SIN1 based on the value of COUNT, to compute an offset PWM duty cycle PWMDC1 and to store the computed duty cycle in a temporary register, REG1. The sine factors SIN2, SIN3 and PWM duty cycles PWMDC2, PWMDC3 are similarly ~3~1Z~Z

determined, as indicated at instruction blocks 302 -306 and 308 - 312, respectively. Then, the instruction block 314 is executed to output the stored duty cycle values PWMDC1, PWMDC2, PWMDC3 to the PWM drivers PWM1, PWM2, PWM3.
As indicated above, the PWM drivers PWM1, PWM2, PWM3 each generate two complementary PWM signals -- one for the high side switching device and one for the low side switching device. In each casel the on-time for the high side switching device is e~ual to the product of the commanded duty cycle (PWMDC) and the period of the switching frequency (1/20 kHz).
The six PWM driver outputs on lines 56 - 66 are supplied as inputs to the Gate Driver Circuit 38, which is depicted in detail in Figures 10 and 11.
Referring to Figure 10, it is seen that the Gate Driver includes an input buffer 320, a level shifter 322 and six isolated gate driver circuits 324 - 334. The level shifter circuit 322 comprises six comparators 336 346, each of which receives a low level (5-volt) PWM
input and a high level reference voltage developed form battery voltage Vb by the divider resistors 348 and 350. The resulting high level (12/24 volt) PWM outputs on lines 352 - 362 are maintained normally high by the pull-up resistors 364 - 374 and are connected as inputs to the driver circuits 324 - 334, respectively.
The six driver circuit outputs on lines 72 -82 are supplied as control inputs to the power devices of the bridge circuit 26 for controlling their conduction. Isolated driver circuits are provided for the high side power devices since the bridge is comprised of all N-channel power devices~ Thus, the ~3~12~

high-side driver circuits 324, 328 and 332 are each provided with an isolated 16 VDC source from power supply 32, as indicated by the designations A+, A-, B+, B-, C+ and C-. The low-side driver circuits 326, 330 and 334 are provided with the same 16 VDC source, as indicated by the designations D~ and D-. Accordingly, it will be understood that the circuits in each of the blocks 376, 378 and 380 are identical except for input and power supply origin.
A representative PWM driver circuit (block 376) is shown in detail in Figure ll. Thus, the high level PWM inputs on lines 352 and 354 are supplied to the driver 324 and 326, respectively, and the respective driver outputs are generated on lines 72 and 74. An optical coupler circuit 382 and associated elements 384 are used to reference the high-side PWM
input on line 352 to the A~, A- power supply. The D-power supply line for the low-side driver 326 is referenced to battery ground potential, as indicated.
The optically isolated high-side PWM driver output on line 386 is supplied as an input to comparator 388, along with a reference voltage determined by the divider resistors 390, 392 and the capacitor 394. The comparator 388 and resistors 396, 398 bias the transistor 400 on and off in accordance with the PWM driver output. The transistor 400, in turn, biases the output transistor pair 402 on and off via the resistors 404, 406. The emitters of the transistor pair 402 are joined and connected to the driver output line 72. The high-side driver elements 388 - 406 are essentially repeated in the low-side driver 326 and are not specifically described herein.

13~

As indicated above, the six driver circuit outputs on lines 72 - 82 are supplied as control inputs to the power devices of the bridge circuit 26, which is depicted in detail in Figure 12. Referring to Figure 12, the bridge circuit 26 comprises six power devices 420 - 430, each including an N-channel power FET 432 and associated transient protection devices 434, as designated within the power device 420.
The bridge output terminals 436, 438, 440 are connected to the stator windings of induction machine 18 and the bridge circuit power devices 420 - 430 are pulse-width-modulated such that the machine 18 receives (motoring) sinusoidal current from the battery 12 or supplies (generating) rectified sinusoidal current for battery charging. The control unit 34 varies the excitation/loading during motoring start-up and transition between motoring and generating and ultimately operates the machine 18 substantially at its most efficient level.
Figure 13 depicts the current generating characteristic of the system of this invention (trace 500), compared to that of a conventionally controlled automotive generator (trace 502). In the conventional system, current cannot normally be supplied to the 13-volt battery load until the generator speed is sufficiently high to produce at least 13 volts; this is referred to as the cut-in voltage/speed. Thereafter, the current generating capability is limited by the stator impedance and ultimately cannot exceed a limit value corresponding to the saturation limit of the machine. In the system of this invention, however, the boost capability of the bridge circuit 26 permits ~3C)~Z42 current to be drawn from the machine 18 at relatively low speeds. This avoids the limitations due to stator impedance and results in a increased generating capability at lower generator speeds, as indicated by the shaded area 504.
While this invention has been described in reference to the illustrated embodiment, it will be understood that this invention is not limited thereto.
For example, the functions of the control unit 34 and PWM GENERATOR 36 may be performed by a single computer-based controller. Numerous other modifications will occur to those skilled in the art, and it will be understood that systems incorporating such modifications may fall within the scope of this invention, which is defined by the appended claims.

Claims (5)

1. A motor vehicle electrical system for starting an internal combustion engine and generating electricity for charging a vehicle storage battery and energizing vehicle electrical loads, comprising in combination:
an induction machine coupled to the engine for bi-directional rotary mechanical energy exchange;
bi-directional bridge circuit means electrically coupling the storage battery and the induction machine for bi-directional electrical energy exchange;
control means for controlling the operation of said bridge circuit means (1) in an engine starting mode to operate said bridge as an inverter for energizing said induction machine with substantially sinusoidal voltage derived from the storage battery, and (2) in a generating mode to operate said bridge as a converter for drawing energy from the induction machine for charging the storage battery; and load converter means coupled between the storage battery and the electrical loads for drawing current from said storage battery at a predefined load voltage for energizing said electrical loads.
2. A motor vehicle electrical system as set forth in Claim 1, wherein:
the control means includes means effective during said engine starting mode for (1) controlling the power frequency of the induction machine so as to maintain the slip between it and the machine speed at a predefined value, and (2) progressively increasing the magnitude of the energization voltage until the ratio of the energization voltage to the power frequency reaches a predefined value corresponding to substantially optimum motoring efficiency of the machine.
3. A motor vehicle electrical system as set forth in Claim 2, wherein:
the control means includes means effective after the ratio of the energization voltage to the power frequency reaches said predefined value and the machine speed exceeds a reference value indicating that the engine has started for (1) matching the power frequency to the machine speed, and (2) resetting the energization voltage to zero.
4. A motor vehicle electrical system as set forth in Claim 1, wherein:
the control means includes means effective during said generating mode for (1) controlling the power frequency of the induction machine as a function of the machine speed and the battery voltage so as to control the voltage of the storage battery to a reference value, and (2) progressively increasing the magnitude of the energization voltage until the ratio of the energization voltage to the power frequency reaches a predefined value corresponding to substantially optimum generating efficiency of the machine.
5. A motor vehicle electrical system as set forth in Claim 4, wherein:
said means includes means for (1) determining a slip command in relation to the difference between the actual battery voltage and said reference voltage, and (2) computing the power frequency according to the sum of the machine speed and said slip command.
CA000600035A 1988-08-01 1989-05-18 Automotive electrical system having a starter/generator induction machine Expired - Fee Related CA1301242C (en)

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US227,036 1988-08-01
US07/227,036 US4883973A (en) 1988-08-01 1988-08-01 Automotive electrical system having a starter/generator induction machine

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Families Citing this family (70)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5055700A (en) * 1989-10-16 1991-10-08 Dhyanchand P John Brushless generator having prime mover start capability
US5281905A (en) * 1989-12-14 1994-01-25 Sundstrand Corporation Induction machine based hybrid aircraft engine starting/generating power system
JP3083310B2 (en) * 1990-01-26 2000-09-04 三菱電機株式会社 Engine power transmission with start function
US5225764A (en) * 1991-11-29 1993-07-06 Sgs-Thomson Microelectronics, Inc. Voltage regulating circuitry to vary the alternator field coil drive at a rate dependent upon a rotor velocity signal
CA2108343A1 (en) * 1992-10-14 1994-04-15 Roy D. Schultz Electronic power regulator for an automotive alternator
EP0665637B1 (en) * 1994-01-31 2000-08-30 Denso Corporation Electric power generating device for vehicles
JP3214224B2 (en) * 1994-04-22 2001-10-02 株式会社日立製作所 Vehicle generator
US5663631A (en) * 1994-07-19 1997-09-02 Nippondenso Co., Ltd. Generator with circuitry for controlling power generation based on rotational speed
FI97654C (en) * 1994-09-09 1997-01-27 Abb Industry Oy Procedure for starting an asynchronous machine
DE19623847A1 (en) * 1995-06-16 1996-12-19 Aisin Aw Co Control of drive unit of hybrid vehicle with IC engine and motor-generator set with recuperative braking system
US6177734B1 (en) * 1998-02-27 2001-01-23 Isad Electronic Systems Gmbh & Co. Kg Starter/generator for an internal combustion engine, especially an engine of a motor vehicle
DE19532164A1 (en) 1995-08-31 1997-03-06 Clouth Gummiwerke Ag Drive system, in particular for a motor vehicle, and method for operating the same
JP2002516055A (en) 1995-08-31 2002-05-28 イーエスアーデー・エレクトロニク・ジステームス・ゲーエムベーハー・ウント・コンパニ・カーゲー Towing control system and method for motor vehicle using electric machine
DE19532129A1 (en) 1995-08-31 1997-03-06 Clouth Gummiwerke Ag System for actively reducing rotational irregularities of a shaft, in particular the drive shaft of an internal combustion engine, and method therefor
DE19532136A1 (en) * 1995-08-31 1997-03-06 Clouth Gummiwerke Ag Drive system, in particular for a motor vehicle, and method for operating the same
JP2002515962A (en) * 1995-08-31 2002-05-28 イーエスアーデー・エレクトロニク・ジステームス・ゲーエムベーハー・ウント・コンパニ・カーゲー Mechanism for positively reducing radial vibrations of a rotating shaft and a method suitable therefor
US6148784A (en) * 1995-08-31 2000-11-21 Isad Electronic Systems Gmbh & Co. Kg Drive systems, especially for a motor vehicle, and method of operating same
DE59603588D1 (en) * 1995-08-31 1999-12-09 Isad Electronic Sys Gmbh & Co DRIVE SYSTEM WITH DRIVE MOTOR, ELECTRICAL MACHINE AND BATTERY
DE19532135A1 (en) 1995-08-31 1997-03-06 Clouth Gummiwerke Ag Drive system, in particular for a motor vehicle, and method for operating the same
US6158405A (en) * 1995-08-31 2000-12-12 Isad Electronic Systems System for actively reducing rotational nonuniformity of a shaft, in particular, the drive shaft of an internal combustion engine, and method of operating the system
US5637987A (en) * 1995-12-18 1997-06-10 General Motors Corporation Regenerative vehicle launch
DE19610915A1 (en) * 1996-03-20 1997-09-25 Wilhelm Wingensiefen District heating power station for operating in existing electric power network
FI963585A (en) 1996-09-11 1998-03-12 Abb Industry Oy Electrical System
DE19646043A1 (en) * 1996-11-08 1998-05-14 Bosch Gmbh Robert Power supply device
FR2757325B1 (en) * 1996-12-16 1999-03-05 Valeo Equip Electr Moteur METHOD FOR MANAGING THE EXCITATION OF A MOTOR VEHICLE ALTERNATOR BY A REGULATOR
CA2248619C (en) * 1997-01-13 2001-03-13 Shinsuke Nagano Generator for internal combustion engine
US6784565B2 (en) 1997-09-08 2004-08-31 Capstone Turbine Corporation Turbogenerator with electrical brake
US5903116A (en) 1997-09-08 1999-05-11 Capstone Turbine Corporation Turbogenerator/motor controller
US6487096B1 (en) 1997-09-08 2002-11-26 Capstone Turbine Corporation Power controller
US6870279B2 (en) 1998-01-05 2005-03-22 Capstone Turbine Corporation Method and system for control of turbogenerator power and temperature
US20020166324A1 (en) 1998-04-02 2002-11-14 Capstone Turbine Corporation Integrated turbine power generation system having low pressure supplemental catalytic reactor
US6079204A (en) * 1998-09-21 2000-06-27 Ford Global Technologies, Inc. Torque control for direct injected engines using a supplemental torque apparatus
DE19849886A1 (en) * 1998-10-29 2000-05-11 Bosch Gmbh Robert Belt drive, especially in internal combustion engines for driving auxiliary units of a vehicle
DE19927521C2 (en) * 1998-11-14 2001-07-19 Bosch Gmbh Robert Electrical machine
US6612112B2 (en) 1998-12-08 2003-09-02 Capstone Turbine Corporation Transient turbine exhaust temperature control for a turbogenerator
DE19910330A1 (en) * 1999-03-09 2000-09-14 Bayerische Motoren Werke Ag Device for monitoring a starting device
DE19913771C1 (en) * 1999-03-26 2000-11-16 Mannesmann Sachs Ag Circuit arrangement for an electrical network and method for operating an electrical network
US6624533B1 (en) 1999-08-04 2003-09-23 Westerbeke Corporation Controlling generator power
US6307275B1 (en) * 2000-01-31 2001-10-23 Ford Global Technologies, Inc. Method and apparatus for controlling a high-speed AC permanent magnet synchronous motor coupled to an industrial turbo engine
US6232739B1 (en) 2000-02-11 2001-05-15 Delphi Technologies, Inc. High-resolution incremental position sensor with pulse switching strategy
FR2806553B1 (en) * 2000-03-17 2002-06-14 Valeo Equip Electr Moteur RECTIFIER FOR A POLYPHASE ALTERNATOR OF MOTOR VEHICLES WITH REDUCED ENERGY LOSSES
US6691507B1 (en) 2000-10-16 2004-02-17 Ford Global Technologies, Llc Closed-loop temperature control for an emission control device
US6787933B2 (en) 2001-01-10 2004-09-07 Capstone Turbine Corporation Power generation system having transient ride-through/load-leveling capabilities
US6603227B2 (en) 2001-04-16 2003-08-05 Briggs & Stratton Corporation Small engine vehicle including a generator
US6777846B2 (en) 2001-04-16 2004-08-17 Briggs & Stratton Corporation Vehicle including a three-phase generator
US8188718B2 (en) * 2002-05-28 2012-05-29 Advanced Battery Management, Llc Method and apparatus for a remote battery charger with a self contained power source
US7687926B2 (en) * 2002-06-06 2010-03-30 Black & Decker Inc. Starter system for portable internal combustion engine electric generators using a portable universal battery pack
US7309928B2 (en) * 2002-06-06 2007-12-18 Black & Decker Inc. Starter system for portable internal combustion engine electric generators using a portable universal battery pack
US7989969B2 (en) 2002-06-06 2011-08-02 Black & Decker Inc. Universal power tool battery pack coupled to a portable internal combustion engine
EP1516421A2 (en) * 2002-06-06 2005-03-23 Black & Decker Inc. Starter system for portable power unit using a portable universal battery pack
US8319357B2 (en) 2002-06-06 2012-11-27 Black & Decker Inc. Starter system for portable internal combustion engine electric generators using a portable universal battery pack
FR2842042A1 (en) 2002-07-04 2004-01-09 Valeo Equip Electr Moteur CONTROL AND POWER MODULE OF AN INTEGRATED ALTERNOMETER
US20040085046A1 (en) * 2002-11-01 2004-05-06 General Electric Company Power conditioning system for turbine motor/generator
US7353084B2 (en) * 2003-02-27 2008-04-01 Acutra, Inc. Generator controller
US7161253B2 (en) * 2003-08-06 2007-01-09 Briggs & Stratton Corporation Portable power source
AT504818A1 (en) 2004-07-30 2008-08-15 Windtec Consulting Gmbh TRANSMISSION TRAIL OF A WIND POWER PLANT
FR2874764B1 (en) * 2004-08-31 2007-09-21 Valeo Equip Electr Moteur CONTROL AND POWER MODULE FOR A ROTATING ELECTRIC MACHINE
US7224146B2 (en) * 2005-10-06 2007-05-29 Deere & Company Dual voltage electrical system
US7782626B2 (en) 2007-02-02 2010-08-24 Black & Decker Inc. Portable power driven system with battery anti-theft apparatus
KR100924924B1 (en) * 2007-11-09 2009-11-05 주식회사 아모텍 Gate driver and motor driving device using the same
AT508155B1 (en) * 2009-05-25 2010-11-15 Hehenberger Gerald Dipl Ing ENERGY EQUIPMENT, IN PARTICULAR WIND POWER PLANT
RU2540416C2 (en) * 2011-05-17 2015-02-10 Хонда Мотор Ко., Лтд. Inverter generator
JP2013103557A (en) * 2011-11-11 2013-05-30 Denso Corp Power supply device
US20150051819A1 (en) * 2013-08-14 2015-02-19 Honda Motor Co., Ltd. Systems and methods for controlling sound generated by a vehicle during vehicle start-up operations
DE102013216700B4 (en) * 2013-08-22 2022-01-27 Siemens Mobility GmbH Charging battery-capable road vehicles
CN103501145B (en) * 2013-09-16 2016-05-11 贵州电网公司电网规划研究中心 Power grid high-frequency stability forecast control method based on lonely net trend principle of transfer
US10059189B2 (en) * 2014-04-29 2018-08-28 Cummins Inc. Electric machine with variable torque drive
US10778123B2 (en) * 2015-10-16 2020-09-15 Kohler Co. Synchronous inverter
EP3555993A4 (en) * 2016-11-23 2020-08-12 Sedemac Mechatronics PVT Ltd A system for controlling electrical power generated by a permanent magnet machine
RU2656240C1 (en) * 2017-01-30 2018-06-04 Александр Геннадьевич Ходырев Electric propulsion unit for the free energy generation using the asynchronous slip generator

Family Cites Families (19)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3908161A (en) * 1974-02-07 1975-09-23 Gen Electric Field excitation system for synchronous machines utilizing a rotating transformer brushless exciter generating combination
US3937974A (en) * 1974-08-30 1976-02-10 General Electric Company Starter-generator utilizing phase controlled rectifiers to drive a dynamoelectric machine as a brushless DC motor in the starting mode with starter position sense variation with speed
JPS56112897A (en) * 1980-02-12 1981-09-05 Toshiba Corp Freezing device
US4330743A (en) * 1980-07-17 1982-05-18 Sundstrand Corporation Electrical aircraft engine start and generating system
US4401938A (en) * 1980-12-29 1983-08-30 Lockheed Corporation Variable-speed drive for control of induction generators
JPS57145600A (en) * 1981-03-02 1982-09-08 Shinko Electric Co Ltd Main shaft driving generating device
DE3113092A1 (en) * 1981-04-01 1982-10-21 Volkswagenwerk Ag, 3180 Wolfsburg "CIRCUIT ARRANGEMENT FOR GENERATING A ROTATING FIELD FOR A THREE-PHASE SYNCHRONOUS MACHINE USING A FLYWHEEL STARTER FOR A VEHICLE INTERNAL COMBUSTION ENGINE"
JPH0632595B2 (en) * 1982-12-28 1994-04-27 富士電機株式会社 Output control method of induction generator
JPS6062899U (en) * 1983-10-05 1985-05-02 三洋電機株式会社 Air conditioner power generation device
JPS60118095A (en) * 1983-11-30 1985-06-25 Nissan Motor Co Ltd Control circuit of motor used as generator
US4481459A (en) * 1983-12-20 1984-11-06 Sundstrand Corporation Combined starting/generating system and method
CH656432A5 (en) * 1984-01-26 1986-06-30 Cerac Inst Sa STARTING DEVICE OF A MOTOR VEHICLE.
JPS60261399A (en) * 1984-06-08 1985-12-24 Hitachi Ltd Operating method of induction generator
JPS6126500A (en) * 1984-07-17 1986-02-05 Hitachi Ltd Integrated starter generator
JPS6149697A (en) * 1984-08-14 1986-03-11 Toshiba Corp Wind power generator
US4786852A (en) * 1986-07-18 1988-11-22 Sundstrand Corporation Inverter operated turbine engine starting system
US4743776A (en) * 1986-09-02 1988-05-10 Sundstrand Corporation Starter-generator for engines
US4697090A (en) * 1986-12-23 1987-09-29 Sundstrand Corporation Starting system for an electrically-compensated constant speed drive
US4777376A (en) * 1987-12-18 1988-10-11 Sundstrand Corporation Lightweight starting system for an electrically compensated constant speed drive

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JP2650760B2 (en) 1997-09-03
KR900002980A (en) 1990-03-23
US4883973A (en) 1989-11-28
DE68901073D1 (en) 1992-04-30
EP0357183A1 (en) 1990-03-07
KR930001646B1 (en) 1993-03-08
EP0357183B1 (en) 1992-03-25
JPH0287999A (en) 1990-03-28

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