US3694661A - Ac generator directly coupled to an internal combustion engine - Google Patents

Ac generator directly coupled to an internal combustion engine Download PDF

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US3694661A
US3694661A US867299A US3694661DA US3694661A US 3694661 A US3694661 A US 3694661A US 867299 A US867299 A US 867299A US 3694661D A US3694661D A US 3694661DA US 3694661 A US3694661 A US 3694661A
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engine
pole pieces
field
armature
core
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US867299A
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Tsutomu Minowa
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Hitachi Ltd
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Hitachi Ltd
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    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02KDYNAMO-ELECTRIC MACHINES
    • H02K19/00Synchronous motors or generators
    • H02K19/16Synchronous generators
    • H02K19/22Synchronous generators having windings each turn of which co-operates alternately with poles of opposite polarity, e.g. heteropolar generators
    • H02K19/24Synchronous generators having windings each turn of which co-operates alternately with poles of opposite polarity, e.g. heteropolar generators with variable-reluctance soft-iron rotors without winding
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02KDYNAMO-ELECTRIC MACHINES
    • H02K7/00Arrangements for handling mechanical energy structurally associated with dynamo-electric machines, e.g. structural association with mechanical driving motors or auxiliary dynamo-electric machines
    • H02K7/18Structural association of electric generators with mechanical driving motors, e.g. with turbines
    • H02K7/1807Rotary generators
    • H02K7/1815Rotary generators structurally associated with reciprocating piston engines

Definitions

  • ABSTRACT An AC generator directly coupled to an engine wherein a cup-shaped rotor having a pair of claw pole pieces is mounted on an extension of the engine crankshaft which is projected to the outside of the engine block on the side reverse to the engine output such that an opening is provided on the side opposite to the engine, an armature core with an armature coil and a field core with a field coil are respectively disposed, being separated by a small air gap, at the radially outer and inner sides of the interposed claw pole pieces, and said armature core and said field core are securely mounted on the inside of a non-magnetic cover which is fastened to the engine block to cover said armature and field cores.
  • the present invention relates to a brushless AC generator provided with a rotor directly coupled to the crankshaft of an engine for vehicles.
  • the AC generator installed in a vehicle is usually driven by the engine which drives the vehicle.
  • Ordinary vehicles employ an arrangement whereby the crankshaft of an engine is extended to the outside of the engine block and a pulley is mounted on this extension of the crankshaft so that the generator, together with a cooling fan and the like, is driven by means of a belt.
  • this belt-driven system is extremely disadvantageous from the aspect of the miniaturization of engine assemblies, and moreover the belt-driven type is impracticable as the AC generator for small motor vehicles such as a motorcycle.
  • a flywheel magneto or a starter dynamo was used in a motorcycle, both of which were, in fact, disadvantageous from the aspects of maintenance, inspection and life because the flywheel magneto could not generally produce a large power and the starter and the field cores were subjected to the heat from the engine since they were mounted on the engine block and moreover the temperature of the armature and the field windings tended to become exceedingly high due to the generation of heat in these windings.
  • the AC generator had its armature and field cores supported on the side reverse to, the engine so that the direct thermal effect due to the heat generated by the engine was not great.
  • this AC generator was mounted between the engine block and the transmission case, its construction was not convenient for the dissipation of the heat generated by the current in the armature and field coils themselves.
  • the transmission case was usually coupled to the engine block mechanically, thus being subject to the heat from the engine, its temperature was caused to increase considerably by the heat generation due to the transmission gears and lubricating oil and therefore the heat dissipation, particularly the dissipation of heat generated in the field coil mounted on the inner side thereof .was difficult. Thus, a considerable temperature rise was unavoidable in this AC generator.
  • the effect of the temperature rise would have a deteriorating effect on the electrical insulation of the two coils and result in a decrease in the electrical output due to an increase in the electric resistance.
  • a decreased current flow due to an increase in the resistance of the field coil would reduce the intensity of a magnetic field produced thus becoming a major factor of a decrease in the electrical output.
  • Another object of the present invention is to provide a brushless-type AC generator directly coupled to an engine, whose temperature rise is low and which is compact, yet produces a relatively large electrical output.
  • Further object of the present invention is to provide an AC generator which can be assembled or-disassembled easily and whose assembly, inspection or later adjustment operation is simple andeasy.
  • Still further object of the present invention isto provide an AC generator consisting of a smaller number of component parts.
  • FIG. 1 is a general view of an engine assembly on which is mounted an AC generator directly coupled to an engine according to the present invention
  • FIG. 2 is a longitudinal sectional side view of an AC generator directly coupled to an engine according to the present invention
  • FIG. 3 is a longitudinal sectional side view of another embodiment of the AC generator directly coupled to an engine
  • FIG. 4 is a longitudinal sectional side view of a further embodiment of the AC generator directly coupled to an engine; I I
  • FIG. 5 is a perspective view of a rotor used in the AC generator of the present invention.
  • FIG. 6 is an output characteristic diagram of the AC generator according to the present invention.
  • numeral 1 designates an AC generator directly coupled to an engine, the subject matter of the present invention, which ismounted on the side of an engine block 2 reverse to the clutch of an ordinary engine assembly comprising, in addition to said engine block 2, a clutch 3, a transmission 4 and a gear shift lever 6 for adjusting the number of revolutionsof a driving shaft 5, and the AC generator is driven by the rotation of the engine.
  • This generator 1 is constructed as shown in FIG. 2. That is, in FIG. 2, 7 designates a cup-shaped rotor having separate claw pole pieces 8 and 81 interconnected by means of a nonmagnetic ring 9 and it has an external appearance as shown separately in FIG. 5.
  • This rotor 7 has its boss 10 mounted on an extended portion 13 of the crankshaft l2 joumaled in the engine block 2 by means of roller bearings 11 and the rotor is then securely fixed by a locking bolt 14.
  • Numeral l5 designates a generator cover made of a non-magnetic material such as aluminum, the cover being securely fixed on the side of the engine block 2 by a plurality of bolts 16 and having an armature core 19 with an armature coil 18 mounted on its inner periphery by means of a stepped surface 17 and secured by fastening bolts 20.
  • Numeral 21 designates a cylindrical field core having a field coil 22 wound concentrically thereon and fitted in the hollow portion of the cup-shaped rotor 7 with an air gap interposed therebetween, and this field core is attached to the inner wall of the generator cover 15 by means of fastening screws 23 so that, together with the armature core 19, it is located concentrically with the crankshaft 12.
  • Numeral 24 designates a lead wire brought out through an attaching side 25 of the field core 21, through the clearance provided between the attaching side 25 and the generator cover 15 and through a guide slot 26 formed inthe armature core 19, whereby both the lead wire 24 and an output lead wire 27 are brought out of the generator for external connection.
  • the outlet hole is usually provided with a rubber bushing 28 for insulating purpose.
  • the field core 21 with the field coil 22 is directly fitted to the generator cover 15 provided on the side reverse to the engine and exposed to the atmosphere so that it does not conduct the large quantity of heat on the side of the engine and the heat generated by itself is conducted tothe aluminum generator cover 15 which is a good heat radiator, whereby an excellent cooling effect is attained with a considerable improvement in the generator performance.
  • the field core 21 used here has a L-shaped cross section and can be threadedly secured by means of the locking screws 23 from the exterior of the generator cover 15, there is no need to provide a mounting base exclusively for the field core 21 with a" resultant reduction in size and moreover, since the armature coil 18 and the field coil 22 can be removed together with the generator cover 15 by unfastening the bolts 16 when the maintenance, inspection or later adjustment operation of these coils is required, a considerable improvement in the operating efficiency is ensured.
  • a boss of a rotor 7 is axially extended to project through an opening 50 of a generator cover and a propeller fan 29 is mounted at the end of the extended boss 10 at the same time that a locking bolt 14 is fastened, with a screw 30 securing the fan 29 to prevent slipping thereof, whereby, by providing an effective fan performance by the rotation of the rotor 7, the generator cover 15 is positively cooled to attain an improved heat dissipation of the generator.
  • 31 designates radially disposed fins and the cooling performance can be improved by these fins.
  • ventilation holes may be formed in the generator cover 15 at any desired places thereof, if needed, to thereby provide an improved cooling efiiciency.
  • FIG. 4 32 the periphery of the camshaft 34.
  • Numeral 40 designates a lubricating felt carried by a supporting bracket 41 projected to the base 38 to constantly apply a lubricant to the cam surface to preventthe wear of the breaker cam follower 39.
  • Numeral 42 designates a dust cover located to cover an open end of the auxiliary cover 32 and it is fixed to the end portion of the auxiliary cover 32 by screws 43 to protect the breaker 36.
  • the heat generated by the breaker is nevertheless negligibly small so that an improved generator performance is attained as the heat can be effectively radiated through the generator cover 15 provided with the auxiliary cover 32.
  • the temperature rise of the annature unit and the field unit may be held between C and C. If the temperature rise is limited within this range, the ordinary class F insulation will be sufficient as the electrical insulation for the respective coils. With the conventional direct-coupled AC generators, however, particularly the temperature of the field unit frequently rose to as high as C to C, and at 150C, for example, the class F insulation would reach the allowable limit and thus it could not withstand a long service. In addition, since the temperature rise of the field coil would result in an increased electrical resistance of the field coil preventing the flowing of the field current, it tended to reduce the produced mag netic flux decreasing the electrical output of the annature coil. FIG.
  • An AC generator directly coupled to an internal combustion engine comprising an armature unit and a field unit which are disposed concentrically with the crankshaft of an engine such that a magnetic flux applied to the armature unit is varied by a rotor unit mounted on the crankshaft and adapted to rotate between the units, characterized in that a cup-shaped claw rotor is provided wherein a first magnetic path is formed radially extending from the end of an extension of the engine crankshaft reverse to the engine which projects outside the engine block, a plurality of first claw pole pieces of the same polarity are formed axially extending from the end portion of said first magnetic path and disposed equally spaced from one another, a plurality of second claw pole pieces of the other same polarity are formed, said second pole pieces being mechanically coupled so that said second pole pieces are arranged between said first claw pole pieces and form a second magnetic path with a ring-shaped portion at the other end thereof, and said pole pieces of the respective polarities are mechanically interconnected by a non-magnetic

Abstract

An AC generator directly coupled to an engine wherein a cupshaped rotor having a pair of claw pole pieces is mounted on an extension of the engine crankshaft which is projected to the outside of the engine block on the side reverse to the engine output such that an opening is provided on the side opposite to the engine, an armature core with an armature coil and a field core with a field coil are respectively disposed, being separated by a small air gap, at the radially outer and inner sides of the interposed claw pole pieces, and said armature core and said field core are securely mounted on the inside of a non-magnetic cover which is fastened to the engine block to cover said armature and field cores.

Description

Minowa AC GENERATOR DIRECTLY COUPLED TO AN INTERNAL COMBUSTION ENGINE [72] Inventor: Tsutolnu Minowa, Hitachi-shi,
Japan [73] Assignee: Hitachi, Ltd., Tokyo, Japan [22] Filed: Oct. 17, 1969 [21] Appl. No.: 867,299
[30] Foreign Application Priority Data Oct. 18, 1968 Japan ..43/7599 [52] US. Cl. ..290/1, 310/168,3l0/60 [51] Int. Cl. ...H02k 19/20 [58] Field of Search ..240/1; 310/168, 263, 60, 62
[56] References Cited UNITED STATES PATENTS 2,588,175 3/1952 Stewart et a1 ..310/168 2,790,124 4/1957 Eisele ..318/254 2,968,755 1/1961 Baermann ..318/254 3,215,878 11/1965 Woodward ..'..310/168 3,252,025 5/1966 Brown et al. 10/168 3,267,312 8/1966 Redick et a1 ..310/168 X L\ v l9 [15] 3,694,661 [451 Sept. 26, 1972 3,320,450 5/1967 Bosco et a1. ..310/168 2,071,953 2/1937 Schou ..310/168 2,928,963 3/1960 Bertsche et a1. ..3 10/ 168 2,987,637 6/1961 Bertsche et al. ..310/68 3,193,713 7/1965 Larson et a1. ..310/168 3,215,877 11/1965 Rauer et a1. ..310/168 3,233,132 2/1966 Terry et al. ..310/168 3,312,844 4/1967 Juhnke et a1. ..310/168 Primary'Exdminer-G. R. Simmons Attorney-Craig and Antonelli [57] ABSTRACT An AC generator directly coupled to an engine wherein a cup-shaped rotor having a pair of claw pole pieces is mounted on an extension of the engine crankshaft which is projected to the outside of the engine block on the side reverse to the engine output such that an opening is provided on the side opposite to the engine, an armature core with an armature coil and a field core with a field coil are respectively disposed, being separated by a small air gap, at the radially outer and inner sides of the interposed claw pole pieces, and said armature core and said field core are securely mounted on the inside of a non-magnetic cover which is fastened to the engine block to cover said armature and field cores.
1 Claim, 6 Drawing Figures P'A'TENTEnssrzs I972 3.694.661
SHEET 1 BF 5 Ill l /v (RPM) INVENTOR TSMTOMI M NOWA 4 0 4 ,/m 0 MN J ATTORNEYj PKTENTED P 3.694.661
same 0F 5 INVENTOR 5 ATTORNEYS I PATENTEDSEPZB m2 3.694.661
snmums I'N'VENTOR TSMTOMI M N W ATTORNEYS PATENTEDsP2s I972 SHEET 5 [IF 5 INVENTOR TSLlTC'MI MINOWA BY Mu 4 7 @M W y ATTORNEYS AC GENERATOR DIRECTLY COUPLED TO AN INTERNAL COMBUSTION ENGINE The present invention relates to a brushless AC generator provided with a rotor directly coupled to the crankshaft of an engine for vehicles.
The AC generator installed in a vehicle is usually driven by the engine which drives the vehicle. Ordinary vehicles employ an arrangement whereby the crankshaft of an engine is extended to the outside of the engine block and a pulley is mounted on this extension of the crankshaft so that the generator, together with a cooling fan and the like, is driven by means of a belt. However, this belt-driven system is extremely disadvantageous from the aspect of the miniaturization of engine assemblies, and moreover the belt-driven type is impracticable as the AC generator for small motor vehicles such as a motorcycle. Such being the case, a flywheel magneto or a starter dynamo was used in a motorcycle, both of which were, in fact, disadvantageous from the aspects of maintenance, inspection and life because the flywheel magneto could not generally produce a large power and the starter and the field cores were subjected to the heat from the engine since they were mounted on the engine block and moreover the temperature of the armature and the field windings tended to become exceedingly high due to the generation of heat in these windings. In the latter case, the AC generator had its armature and field cores supported on the side reverse to, the engine so that the direct thermal effect due to the heat generated by the engine was not great. However, since this AC generator was mounted between the engine block and the transmission case, its construction was not convenient for the dissipation of the heat generated by the current in the armature and field coils themselves. In other words, besides the fact that the transmission case was usually coupled to the engine block mechanically, thus being subject to the heat from the engine, its temperature was caused to increase considerably by the heat generation due to the transmission gears and lubricating oil and therefore the heat dissipation, particularly the dissipation of heat generated in the field coil mounted on the inner side thereof .was difficult. Thus, a considerable temperature rise was unavoidable in this AC generator.
In this type of AC generators, the effect of the temperature rise would have a deteriorating effect on the electrical insulation of the two coils and result in a decrease in the electrical output due to an increase in the electric resistance. In particular, a decreased current flow due to an increase in the resistance of the field coil would reduce the intensity of a magnetic field produced thus becoming a major factor of a decrease in the electrical output.
It is therefore a primary object of the present invention toprovide a brushless-type AC generator directly coupled to an engine.
Another object of the present invention is to provide a brushless-type AC generator directly coupled to an engine, whose temperature rise is low and which is compact, yet produces a relatively large electrical output.
Further object of the present invention is to provide an AC generator which can be assembled or-disassembled easily and whose assembly, inspection or later adjustment operation is simple andeasy.
Still further object of the present invention isto provide an AC generator consisting of a smaller number of component parts.
Still further objects of the present invention will be apparent from the following description of the embodiments when read in conjunction with the accompanying drawings, in which:
FIG. 1 is a general view of an engine assembly on which is mounted an AC generator directly coupled to an engine according to the present invention;
FIG. 2 is a longitudinal sectional side view of an AC generator directly coupled to an engine according to the present invention;
FIG. 3 is a longitudinal sectional side view of another embodiment of the AC generator directly coupled to an engine;
FIG. 4 is a longitudinal sectional side view of a further embodiment of the AC generator directly coupled to an engine; I I
FIG. 5 is a perspective view of a rotor used in the AC generator of the present invention; and
FIG. 6 is an output characteristic diagram of the AC generator according to the present invention.
, Referring to FIG. 1, numeral 1 designates an AC generator directly coupled to an engine, the subject matter of the present invention, which ismounted on the side of an engine block 2 reverse to the clutch of an ordinary engine assembly comprising, in addition to said engine block 2, a clutch 3, a transmission 4 and a gear shift lever 6 for adjusting the number of revolutionsof a driving shaft 5, and the AC generator is driven by the rotation of the engine. This generator 1 is constructed as shown in FIG. 2. That is, in FIG. 2, 7 designates a cup-shaped rotor having separate claw pole pieces 8 and 81 interconnected by means of a nonmagnetic ring 9 and it has an external appearance as shown separately in FIG. 5. This rotor 7 has its boss 10 mounted on an extended portion 13 of the crankshaft l2 joumaled in the engine block 2 by means of roller bearings 11 and the rotor is then securely fixed by a locking bolt 14. Numeral l5 designates a generator cover made of a non-magnetic material such as aluminum, the cover being securely fixed on the side of the engine block 2 by a plurality of bolts 16 and having an armature core 19 with an armature coil 18 mounted on its inner periphery by means of a stepped surface 17 and secured by fastening bolts 20. Numeral 21 designates a cylindrical field core having a field coil 22 wound concentrically thereon and fitted in the hollow portion of the cup-shaped rotor 7 with an air gap interposed therebetween, and this field core is attached to the inner wall of the generator cover 15 by means of fastening screws 23 so that, together with the armature core 19, it is located concentrically with the crankshaft 12. Numeral 24 designates a lead wire brought out through an attaching side 25 of the field core 21, through the clearance provided between the attaching side 25 and the generator cover 15 and through a guide slot 26 formed inthe armature core 19, whereby both the lead wire 24 and an output lead wire 27 are brought out of the generator for external connection. Here, the outlet hole is usually provided with a rubber bushing 28 for insulating purpose.
With an arrangement as described above, it is a well known fact that as the engine is operated and the crankshaft 12 rotates to turn the rotor 7, the claw pole pieces 8 and 81 produce a rotating field and an AC current is induced in the armature coil 18 and that the generator output decreases in proportion to the internal temperature rise. According to the construction of the present invention, however, the field core 21 with the field coil 22 is directly fitted to the generator cover 15 provided on the side reverse to the engine and exposed to the atmosphere so that it does not conduct the large quantity of heat on the side of the engine and the heat generated by itself is conducted tothe aluminum generator cover 15 which is a good heat radiator, whereby an excellent cooling effect is attained with a considerable improvement in the generator performance. In addition, as the field core 21 used here has a L-shaped cross section and can be threadedly secured by means of the locking screws 23 from the exterior of the generator cover 15, there is no need to provide a mounting base exclusively for the field core 21 with a" resultant reduction in size and moreover, since the armature coil 18 and the field coil 22 can be removed together with the generator cover 15 by unfastening the bolts 16 when the maintenance, inspection or later adjustment operation of these coils is required, a considerable improvement in the operating efficiency is ensured. v
1 Referring now to FIG. 3 showing another embodiment of 'the present invention, a boss of a rotor 7 is axially extended to project through an opening 50 of a generator cover and a propeller fan 29 is mounted at the end of the extended boss 10 at the same time that a locking bolt 14 is fastened, with a screw 30 securing the fan 29 to prevent slipping thereof, whereby, by providing an effective fan performance by the rotation of the rotor 7, the generator cover 15 is positively cooled to attain an improved heat dissipation of the generator. In the figure, 31 designates radially disposed fins and the cooling performance can be improved by these fins.
constantly apply a the end In addition, ventilation holes may be formed in the generator cover 15 at any desired places thereof, if needed, to thereby provide an improved cooling efiiciency. I
Further embodiment of the present invention will b explained with reference to FIG. 4 in which 32 the periphery of the camshaft 34. Numeral 40 designates a lubricating felt carried by a supporting bracket 41 projected to the base 38 to constantly apply a lubricant to the cam surface to preventthe wear of the breaker cam follower 39. Numeral 42 designates a dust cover located to cover an open end of the auxiliary cover 32 and it is fixed to the end portion of the auxiliary cover 32 by screws 43 to protect the breaker 36. In this embodiment wherein the breaker 36 is mounted near the end portion of the same shaft, the heat generated by the breaker is nevertheless negligibly small so that an improved generator performance is attained as the heat can be effectively radiated through the generator cover 15 provided with the auxiliary cover 32. I
According to the embodiments of the present invention described above, the temperature rise of the annature unit and the field unit may be held between C and C. If the temperature rise is limited within this range, the ordinary class F insulation will be sufficient as the electrical insulation for the respective coils. With the conventional direct-coupled AC generators, however, particularly the temperature of the field unit frequently rose to as high as C to C, and at 150C, for example, the class F insulation would reach the allowable limit and thus it could not withstand a long service. In addition, since the temperature rise of the field coil would result in an increased electrical resistance of the field coil preventing the flowing of the field current, it tended to reduce the produced mag netic flux decreasing the electrical output of the annature coil. FIG. 6 shows the relationship between the rpm N and the output currentl of an AC generator with the field coil temperature T being 80C, 100C and 150C, respectively. According to the figure, at N 2,000 rpm and T 80C, the output current I was 13 amperes, whereas at T 100C, the l was 11.5 amperes, and at T 150C, it still dropped to 8 amperes. Then, the output current I which was 17 amperes at N 6,000 rpm and T 80C dropped to 15.5 amperes at T 100C and it further dropped to 12 amperes atT 150C. It will be apparent from the foregoing that the temperature rise of the fieldcoil has an importanteffeet on the magnitude of the output current, and the superiority of the AC generator of the present invention will be understood even from this fact.
What is claimed is: s
I. An AC generator directly coupled to an internal combustion engine comprising an armature unit and a field unit which are disposed concentrically with the crankshaft of an engine such that a magnetic flux applied to the armature unit is varied by a rotor unit mounted on the crankshaft and adapted to rotate between the units, characterized in that a cup-shaped claw rotor is provided wherein a first magnetic path is formed radially extending from the end of an extension of the engine crankshaft reverse to the engine which projects outside the engine block, a plurality of first claw pole pieces of the same polarity are formed axially extending from the end portion of said first magnetic path and disposed equally spaced from one another, a plurality of second claw pole pieces of the other same polarity are formed, said second pole pieces being mechanically coupled so that said second pole pieces are arranged between said first claw pole pieces and form a second magnetic path with a ring-shaped portion at the other end thereof, and said pole pieces of the respective polarities are mechanically interconnected by a non-magnetic material on the inside thereof; an armature core with an armature coil is disposed with a small air gap with respect to and outside of the outer periphery of said claw pole pieces; a field coil is formed, said field coil being wound on a cylindrical field core having a L-shaped cross section; said field core is disposed on the inner side of said claw rotor such that one side of the L-shaped cross section of said member extending from the engine block to cover said cores. I

Claims (1)

1. An AC generator directly coupled to an internal combustion engine comprising an armature unit and a field unit which are disposed concentrically with the crankshaft of an engine such that a magnetic flux applied to the armature unit is varied by a rotor unit mounted on the crankshaft and adapted to rotate between the units, characterized in that a cup-shaped claw rotor is provided wherein a first magnetic path is formed radially extending from the end of an extension of the engine crankshaft reverse to the engine which projects outside the engine block, a plurality of first claw pole pieces of the same polarity are formed axially extending from the end portion of said first magnetic path and disposed equally spaced from one another, a plurality of second claw pole pieces of the other same polarity are formed, said second pole pieces being mechanically coupled so that said second pole pieces are arranged between said first claw pole pieces and form a second magnetic path with a ring-shaped portion at the other end thereof, and said pole pieces of the respective polarities are mechanically interconnected by a nonmagnetic material on the inside thereof; an armature core with an armature coil is disposed with a small air gap with respect to and outside of the outer periphery of said claw pole pieces; a field coil is formed, said field coil being wound on a cylindrical field core having a L-shaped cross section; said field core is disposed on the inner side of said claw rotor such that one side of the L-shaped cross section of said field core is opposed to the boss of said rotor connected to said first claw pole pieces and another side of said L-shaped cross section is opposed tO said ring-shaped portion of said second claw pole pieces with a small air gap being interposed therebetween, respectively; and said armature core and said field core are securely supported on the inside of a non-magnetic supporting member extending from the engine block to cover said cores.
US867299A 1968-10-18 1969-10-17 Ac generator directly coupled to an internal combustion engine Expired - Lifetime US3694661A (en)

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US3797242A (en) * 1972-06-02 1974-03-19 M Bowdish Unified smog pump and alternator
US3801845A (en) * 1972-07-13 1974-04-02 Gen Motors Corp Rotational characteristics sensing and signal generating mechanism and a magnetic field interrupter therefor
WO1996009679A2 (en) * 1994-09-14 1996-03-28 Coleman Powermate, Inc. Light weight portable generator
US5530305A (en) * 1994-01-13 1996-06-25 Outboard Marine Corporation Marine engine alternator construction
DE19630658A1 (en) * 1995-08-08 1997-02-13 Valeo Equip Electr Moteur Water-cooled brushless AC generator for motor vehicle - has core of excitation winding secured to transverse bearing plate by row of screws whose heads protrude into cooling chamber.
EP0789441A1 (en) * 1996-02-06 1997-08-13 Ford Motor Company Electrical generating system for a motor vehicle
US5900722A (en) * 1994-09-14 1999-05-04 Coleman Powermate, Inc. Multimode power converter
FR2776141A1 (en) * 1998-03-11 1999-09-17 Philippe Gautron Electrical generator with a suspended excitation circuit, for charging high capacity batteries
US6018200A (en) * 1994-09-14 2000-01-25 Coleman Powermate, Inc. Load demand throttle control for portable generator and other applications
US6118186A (en) * 1994-09-14 2000-09-12 Coleman Powermate, Inc. Throttle control for small engines and other applications
EP1280256A1 (en) * 2001-07-26 2003-01-29 Visteon Global Technologies, Inc. Electric machine rotor with crankshaft torsional damper
US20040021320A1 (en) * 2002-07-30 2004-02-05 Yoshinori Yamada Engine-driven generator
US6713934B2 (en) * 2000-11-07 2004-03-30 Yamaha Marine Kabushiki Kaisha Generator for an outboard motor
US6876113B1 (en) * 1999-05-25 2005-04-05 David Jonathan Harris Alternators and improvements to rotary internal combustion engines
US20060056996A1 (en) * 2000-12-21 2006-03-16 Ingersoll-Rand Company Compressor and driving motor assembly
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US8496079B2 (en) 2009-09-16 2013-07-30 Swissauto Powersport Llc Electric vehicle and on-board battery charging apparatus therefore
US20150171688A1 (en) * 2013-12-18 2015-06-18 Mitsubishi Electric Corporation Vehicle brushless ac generator
US9187083B2 (en) 2009-09-16 2015-11-17 Polaris Industries Inc. System and method for charging an on-board battery of an electric vehicle
US20200011269A1 (en) * 2018-07-06 2020-01-09 Honda Motor Co., Ltd., Engine
US10744868B2 (en) 2016-06-14 2020-08-18 Polaris Industries Inc. Hybrid utility vehicle
US10780770B2 (en) 2018-10-05 2020-09-22 Polaris Industries Inc. Hybrid utility vehicle
US11370266B2 (en) 2019-05-16 2022-06-28 Polaris Industries Inc. Hybrid utility vehicle

Families Citing this family (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
IT8353281V0 (en) * 1983-05-04 1983-05-04 Fiat Veicoli Ind ELECTRIC MACHINE TO BE PAIRED TO AN ALTERNATIVE INTERNAL COMBUSTION ENGINE FOR MOTOR VEHICLES

Citations (14)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2071953A (en) * 1933-05-04 1937-02-23 Fairbanks Morse & Co Flywheel type electric machine
US2588175A (en) * 1950-09-23 1952-03-04 Leece Neville Co Inductor alternator
US2790124A (en) * 1954-12-20 1957-04-23 Reflectone Corp Positioning device
US2928963A (en) * 1956-06-06 1960-03-15 Gen Motors Corp Dynamoelectric machine
US2968755A (en) * 1958-07-28 1961-01-17 Baermann Max Magnetic motor
US2987637A (en) * 1956-06-06 1961-06-06 Gen Motors Corp Dynamoelectric machine
US3193713A (en) * 1960-10-06 1965-07-06 Gen Motors Corp Inductor alternator
US3215877A (en) * 1960-07-12 1965-11-02 Gen Motors Corp Flywheel alternator
US3215878A (en) * 1961-12-26 1965-11-02 Emerson Electric Co Brushless alternator
US3233132A (en) * 1962-03-28 1966-02-01 Phelon Co Inc Inductor alternator
US3252025A (en) * 1961-08-03 1966-05-17 Gen Motors Corp Rotor for dynamoelectric machines
US3267312A (en) * 1961-09-21 1966-08-16 Gen Motors Corp Dynamoelectric machine terminal connection
US3312844A (en) * 1965-02-16 1967-04-04 Niehoff & Co C E Inductor alternator
US3320450A (en) * 1964-05-18 1967-05-16 Aerojet General Co Brushless alternator for vehicles

Patent Citations (14)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2071953A (en) * 1933-05-04 1937-02-23 Fairbanks Morse & Co Flywheel type electric machine
US2588175A (en) * 1950-09-23 1952-03-04 Leece Neville Co Inductor alternator
US2790124A (en) * 1954-12-20 1957-04-23 Reflectone Corp Positioning device
US2928963A (en) * 1956-06-06 1960-03-15 Gen Motors Corp Dynamoelectric machine
US2987637A (en) * 1956-06-06 1961-06-06 Gen Motors Corp Dynamoelectric machine
US2968755A (en) * 1958-07-28 1961-01-17 Baermann Max Magnetic motor
US3215877A (en) * 1960-07-12 1965-11-02 Gen Motors Corp Flywheel alternator
US3193713A (en) * 1960-10-06 1965-07-06 Gen Motors Corp Inductor alternator
US3252025A (en) * 1961-08-03 1966-05-17 Gen Motors Corp Rotor for dynamoelectric machines
US3267312A (en) * 1961-09-21 1966-08-16 Gen Motors Corp Dynamoelectric machine terminal connection
US3215878A (en) * 1961-12-26 1965-11-02 Emerson Electric Co Brushless alternator
US3233132A (en) * 1962-03-28 1966-02-01 Phelon Co Inc Inductor alternator
US3320450A (en) * 1964-05-18 1967-05-16 Aerojet General Co Brushless alternator for vehicles
US3312844A (en) * 1965-02-16 1967-04-04 Niehoff & Co C E Inductor alternator

Cited By (33)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3797242A (en) * 1972-06-02 1974-03-19 M Bowdish Unified smog pump and alternator
US3801845A (en) * 1972-07-13 1974-04-02 Gen Motors Corp Rotational characteristics sensing and signal generating mechanism and a magnetic field interrupter therefor
US5530305A (en) * 1994-01-13 1996-06-25 Outboard Marine Corporation Marine engine alternator construction
WO1996009679A2 (en) * 1994-09-14 1996-03-28 Coleman Powermate, Inc. Light weight portable generator
WO1996009679A3 (en) * 1994-09-14 1996-08-15 Coleman Powermate Inc Light weight portable generator
US5900722A (en) * 1994-09-14 1999-05-04 Coleman Powermate, Inc. Multimode power converter
US6018200A (en) * 1994-09-14 2000-01-25 Coleman Powermate, Inc. Load demand throttle control for portable generator and other applications
US6118186A (en) * 1994-09-14 2000-09-12 Coleman Powermate, Inc. Throttle control for small engines and other applications
DE19630658A1 (en) * 1995-08-08 1997-02-13 Valeo Equip Electr Moteur Water-cooled brushless AC generator for motor vehicle - has core of excitation winding secured to transverse bearing plate by row of screws whose heads protrude into cooling chamber.
EP0789441A1 (en) * 1996-02-06 1997-08-13 Ford Motor Company Electrical generating system for a motor vehicle
US5760507A (en) * 1996-02-06 1998-06-02 Ford Global Technologies, Inc. Electrical generating system for a motor vehicle
FR2776141A1 (en) * 1998-03-11 1999-09-17 Philippe Gautron Electrical generator with a suspended excitation circuit, for charging high capacity batteries
US6876113B1 (en) * 1999-05-25 2005-04-05 David Jonathan Harris Alternators and improvements to rotary internal combustion engines
US20050269886A1 (en) * 1999-05-25 2005-12-08 Harris David J Alternators and improvements to rotary internal combustion engines
US6713934B2 (en) * 2000-11-07 2004-03-30 Yamaha Marine Kabushiki Kaisha Generator for an outboard motor
US20060056996A1 (en) * 2000-12-21 2006-03-16 Ingersoll-Rand Company Compressor and driving motor assembly
US7573165B2 (en) * 2000-12-21 2009-08-11 Ingersoll-Rand European Sales Limited Compressor and driving motor assembly
US20030020337A1 (en) * 2001-07-26 2003-01-30 Joachim Jon B. Electric machine rotor with crankshaft torsional damper
EP1280256A1 (en) * 2001-07-26 2003-01-29 Visteon Global Technologies, Inc. Electric machine rotor with crankshaft torsional damper
US20040021320A1 (en) * 2002-07-30 2004-02-05 Yoshinori Yamada Engine-driven generator
US6975042B2 (en) * 2002-07-30 2005-12-13 Yamaha Hatsudoki Kabushiki Kaisha Engine-driven generator
US9187083B2 (en) 2009-09-16 2015-11-17 Polaris Industries Inc. System and method for charging an on-board battery of an electric vehicle
US8496079B2 (en) 2009-09-16 2013-07-30 Swissauto Powersport Llc Electric vehicle and on-board battery charging apparatus therefore
US8624459B2 (en) * 2010-03-30 2014-01-07 Denso Corporation Rotor of electric rotating machine including non-magnetic body
US20110241471A1 (en) * 2010-03-30 2011-10-06 Denso Corporation Rotor of electric rotating machine
US20150171688A1 (en) * 2013-12-18 2015-06-18 Mitsubishi Electric Corporation Vehicle brushless ac generator
US10432054B2 (en) * 2013-12-18 2019-10-01 Mitsubishi Electric Corporation Vehicle brushless AC generator
US10744868B2 (en) 2016-06-14 2020-08-18 Polaris Industries Inc. Hybrid utility vehicle
US20200011269A1 (en) * 2018-07-06 2020-01-09 Honda Motor Co., Ltd., Engine
CN110685804A (en) * 2018-07-06 2020-01-14 本田技研工业株式会社 Engine
US10995696B2 (en) * 2018-07-06 2021-05-04 Honda Motor Co., Ltd. Engine
US10780770B2 (en) 2018-10-05 2020-09-22 Polaris Industries Inc. Hybrid utility vehicle
US11370266B2 (en) 2019-05-16 2022-06-28 Polaris Industries Inc. Hybrid utility vehicle

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DE1952416A1 (en) 1970-05-21

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