WO2012127897A1 - Drive force transmission apparatus - Google Patents
Drive force transmission apparatus Download PDFInfo
- Publication number
- WO2012127897A1 WO2012127897A1 PCT/JP2012/051283 JP2012051283W WO2012127897A1 WO 2012127897 A1 WO2012127897 A1 WO 2012127897A1 JP 2012051283 W JP2012051283 W JP 2012051283W WO 2012127897 A1 WO2012127897 A1 WO 2012127897A1
- Authority
- WO
- WIPO (PCT)
- Prior art keywords
- shaft
- input
- output
- transmitting member
- side sub
- 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.)
- Ceased
Links
Classifications
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F02—COMBUSTION ENGINES; HOT-GAS OR COMBUSTION-PRODUCT ENGINE PLANTS
- F02D—CONTROLLING COMBUSTION ENGINES
- F02D15/00—Varying compression ratio
- F02D15/02—Varying compression ratio by alteration or displacement of piston stroke
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16H—GEARING
- F16H1/00—Toothed gearings for conveying rotary motion
- F16H1/02—Toothed gearings for conveying rotary motion without gears having orbital motion
- F16H1/20—Toothed gearings for conveying rotary motion without gears having orbital motion involving more than two intermeshing members
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16H—GEARING
- F16H3/00—Toothed gearings for conveying rotary motion with variable gear ratio or for reversing rotary motion
- F16H3/003—Toothed gearings for conveying rotary motion with variable gear ratio or for reversing rotary motion the gear ratio being changed by inversion of torque direction
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- Y—GENERAL 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
- Y10—TECHNICAL SUBJECTS COVERED BY FORMER USPC
- Y10T—TECHNICAL SUBJECTS COVERED BY FORMER US CLASSIFICATION
- Y10T74/00—Machine element or mechanism
- Y10T74/19—Gearing
- Y10T74/19614—Disconnecting means
Definitions
- the present invention relates to a drive force transmission apparatus.
- a drive force transmission apparatus drives a subject mechanism, which is connected to an output shaft of the drive force transmitting apparatus, by transmitting rotation of an input shaft, which is driven with a drive force of, for example, an electric motor, to the output shaft at a rotational speed that is the same, decreased or increased relative to a rotational speed of the input shaft.
- an input-to-output speed ratio also referred to as a speed change ratio
- a speed change ratio which is a ratio between a rotational speed of the input shaft and a rotational speed of the output shaft
- an output characteristic of a transmitted torque which is transmitted from the input shaft to the output shaft, are constant regardless of the rotational direction of the input shaft.
- it is required to provide different output characteristics between the normal rotation and the reverse rotation or between forward movement and backward movement of an actuator, which serves as the subject mechanism.
- a loading and unloading lift requires the low speed and high torque at the time of lifting up and requires the high speed without requiring a torque at the time of lifting down.
- a winch requires the low speed and high torque at the time of winding up (pulling in) and requires the high speed without requiring a torque at the time of winding out (letting out).
- a clamp requires the high clamping force at the low speed at the time of clamping and requires the high speed without requiring a clamping force at the time of unclamping.
- a clutch requires the high torque and low speed at the time of compressing a spring and requires the low torque and high speed at the time of releasing in a direction of the spring force.
- variable compression ratio engine which can change a compression ratio thereof
- the low speed and high torque is required at the time of changing from a low compression ratio side to a high compression ratio side
- the high speed is required without requiring a torque at the time of changing from the high compression ratio side to the low compression ratio side.
- the actuator having the fixed input-to-output speed ratio needs to sacrifice one of the characteristics or needs to incases the output and/or size of the motor and/or the actuator.
- a technique of a transmission such as an automatic transmission of a vehicle, which uses electronic control
- an apparatus and/or a method which changes the output characteristic between the normal rotation and the reverse rotation or between the forward movement and the backward movement.
- it is known to mechanically or electrically sense the rotational direction and to select one of different drive force transmission paths, which have different gear ratios, respectively.
- Japanese Unexamined Patent Publication JP2006-234062A recites a two- speed transmission apparatus, which can rotate in both of a normal rotational direction and a reverse rotational direction.
- This two-speed transmission apparatus includes an electromagnetic clutch, which can electromagnetically couple and decouple between an output shaft of a drive device and an internal gear of a speed reducing planetary gear mechanism.
- Japanese Patent JP4333129B2 recites a variable compression ratio engine.
- Japanese Unexamined Patent Publication JP2009-079408A teaches an opening/closing body drive apparatus.
- this opening/closing body drive apparatus two one-way clutches are used to form the two drive force transmission paths and to enable selection between the two drive force transmission paths, like in Japanese Patent JP4333129B2.
- Japanese Unexamined Patent Publication JP2004-239326A (corresponding to US2004/0152556A1) teaches an automatic reducing-ratio changing apparatus.
- a high torque is generated at a terminal end of a forward path (outward route) of an actuator, and thereafter lock levers are moved by an abutment force to change the speed reducing ratio (reducing-ratio), so that the actuator is displaced at a high speed in the backward path (homeward route).
- Japanese Unexamined Patent Publication JPH07-071558A (corresponding to US5,557,987) teaches a rotation transmission apparatus.
- ratchets are used to select a drive force transmission path based on a rotational direction.
- Japanese Unexamined Utility Model Publication JPH06-8945U teaches an automatic winding speed change mechanism for a camera.
- This automatic winding speed change mechanism includes an electric motor and two transmission gear systems, and a switching gear is moved upward or downward according a winding load to change a drive force transmission path, thereby automatically changing a winding speed.
- the apparatus which uses the electronic control
- the apparatus which uses the mechanical or electric sensing and the drive force switching mechanism
- the apparatus of Japanese Unexamined Patent Publication JP2006-234062A has the increased number of components due to the addition of a solenoid of the electromagnetic clutch and a control device, thereby resulting in the increased costs.
- a circuit which controls the solenoid synchronously with the rotational direction of the motor, is required. A sensor and a control element are required, so that fine movement is difficult, and the operation may possibly become unreliable.
- Japanese Patent JP4333129B2 and Japanese Unexamined Patent Publication JP2009-079408A the two one-way clutches, which limit opposite rotations, respectively, are used.
- the one-way clutches respectively transmit rotational forces to the two transmission paths, which have the different input-to-output speed ratios, respectively. In this way, the input-to-output speed ratio is changed according to the rotational direction.
- this structure cannot implement the normal rotation and the reverse rotation.
- the two one-way clutches i.e., a first one-way clutch and a second one-way clutch are provided to the output shaft.
- the first one-way clutch and the second one-way clutch limit opposite rotations, respectively, which are opposite to each other.
- the first oneway clutch drives an opening side drive gear
- the second one-way clutch drives a closing side drive gear.
- the opening side drive gear and the closing side drive gear are engaged with an opening side driven gear and a closing side driven gear, respectively, which are fixed to a common intermediate shaft.
- the state, in which the output shaft is rotated in the opposite rotational direction, is a drive force transmitting state of the second one-way clutch. Therefore, the first one-way clutch and the second one-way clutch are simultaneously held in the drive force transmitting state. As a result, deadlock occurs, i.e., the drive force transmission systems interfere with each other due to the drive force transmissions at the different input-to-output speed ratios. Therefore, this mechanism cannot be properly operated, i.e., is inoperable.
- JPH07-071558A corresponding to US5, 557,987
- a lost torque is generate between an input shaft and an output shaft due switching of the ratchets.
- a ratchet system which includes the ratchets, needs to be installed to a portion of the apparatus, which is connected to an inside of the drive shaft or the drive shaft itself. Therefore, the apparatus cannot be made compact or cannot have a simple structure. Furthermore, a good rotational balance is difficult to implement, so that it is not suitable for the high speed rotation.
- a ratchet fitting portion is limited to a circumferential portion of the corresponding gear, so that the amount of the drive force transmission may possibly become short relative to the size of the entire apparatus.
- the present invention addresses the above disadvantages.
- a drive force transmission apparatus which includes an input shaft, an output shaft, an input transmitting member, an input side sub-shaft , a first transmitting member, an output side sub-shaft, a second transmitting member, an output transmitting member, a one-way rotational force transmitting member and a two-way rotational force transmitting member.
- the input shaft is rotatable in each of a normal rotational direction and a reverse rotational direction, which are opposite to each other.
- the output shaft is rotatable by a rotational force transmitted from the input shaft.
- the output shaft is adapted to be rotated in the normal rotational direction at a rotational speed, which is the same as a rotational speed of the input shaft when the input shaft is rotated in the normal rotational direction, and the output shaft is adapted to be rotated in the reverse rotational direction at a decreased rotational speed, which is decreased from a rotational speed of the input shaft, when the input shaft is rotated in the reverse rotational direction.
- the input transmitting member is fixed to the input shaft and is rotatable integrally with the input shaft.
- the input side sub-shaft has an axis, which is different from an axis of the input shaft.
- the first transmitting member is fixed to the input side sub-shaft and is rotatable integrally with the input side sub-shaft when rotation is transmitted from the input transmitting member to the first transmitting member.
- the output side sub-shaft has an axis, which is different from an axis of the output shaft.
- the second transmitting member is fixed to the output side sub-shaft and is rotatable integrally with the output side sub-shaft.
- the output transmitting member is fixed to the output shaft and is rotatable integrally with the output shaft when rotation is transmitted from the second transmitting member to the output transmitting member.
- the one-way rotational force transmitting member is placed between the input shaft and the output shaft.
- the one-way rotational force transmitting member transmits a rotational force from the input shaft to the output shaft when the input shaft is rotated in the normal rotational direction.
- the one-way rotational force transmitting member frees the output shaft to enable rotation of the input shaft relative to the output shaft when the input shaft is rotated in the reverse rotational direction.
- the two-way rotational force transmitting member is placed between the input side sub-shaft and the output side sub-shaft.
- the two-way rotational force transmitting member transmits a rotational force from the input side sub-shaft to the output side sub-shaft.
- the two-way rotational force transmitting member frees the input side sub-shaft to enable rotation of the output side sub-shaft relative to the input side sub-shaft upon application of a rotational force from the output side sub-shaft.
- the rotational force of the input shaft is transmitted to the output shaft through the one-way rotational force transmitting member when the input shaft is rotated in the normal rotational direction.
- the rotational force of the input shaft is transmitted to the output shaft through the input transmitting member, the first transmitting member, the input side sub-shaft, the two- way rotational force transmitting member, the output side sub-shaft, the second transmitting member and the output transmitting member when the input shaft is rotated in the reverse rotational direction.
- FIG. 1 is a cross-sectional view of a drive force transmission apparatus according to an embodiment of the present invention
- FIG. 2 is a cross-sectional view taken along line ll-ll in FIG. 1 ;
- FIG. 3 is a cross-sectional view taken along line Ill-Ill in FIG. 1 ;
- FIG. 4 is a schematic diagram of a variable compression ratio engine, in which the drive force transmission apparatus of the embodiment is applied;
- FIGS. 5Ato 5F are schematic diagrams indicating various operational states of a one-way clutch of the drive force transmission apparatus of the embodiment
- FIG. 6A is a partial enlarged view of an area indicated with an arrow VIA in FIG. 1 , showing a structure of a two-way clutch of the drive force transmission apparatus;
- FIGS. 6B and 6C are views taken in a direction of an arrow VIB in FIG. 6A, showing two different operational states of the two-way clutch of the drive force transmission apparatus;
- FIG. 7A is a perspective view showing a coupling of the drive force transmission apparatus of the embodiment.
- FIGS. 7B and 7C are schematic cross-sectional views taken along line VIIB- VIIB in FIG. 7A, showing operational states at time of changing an operational state of an input shaft from a stop state to a normal rotation according to the embodiment;
- FIGS. 7D and 7E are schematic cross-sectional views taken along line VIIB- VIIB in FIG. 7A, showing operational states at time of changing an operational state of an input shaft from the normal rotation to a stopped state or reverse rotation according to the embodiment;
- FIG. 8A is a schematic diagram showing an operation of the drive force transmission apparatus of the embodiment at the time of normal rotation of the input shaft;
- FIG. 8B is a schematic diagram showing an operation of the drive force transmission apparatus of the embodiment at the time of reverse rotation of the input shaft;
- FIG. 9A is a diagram showing a timing chart for a drive force transmission apparatus of a comparative example
- FIG. 9B is a diagram showing a timing chart of the drive force transmission apparatus according to the embodiment of the present invention.
- FIGS. 10A to 10D are schematic diagrams showing various modifications of the embodiment.
- a drive force transmission apparatus of the present invention is applied to a variable compression ratio engine, which is installed in, for example, a vehicle (e.g., an automobile) and has a variable compression ratio.
- the variable compression ratio engine 80 has a cam cover 81 , a cylinder head 82, a cylinder block 83 and a lower case 84.
- a cylinder 85 is formed in the cylinder block 83, and a piston 86 is received in the cylinder 85 in a manner that enables reciprocation of the piston 86 in the cylinder 85.
- An intake valve 881 and an exhaust valve 882 are installed in the cylinder head 82.
- the intake valve 881 opens and closes an intake passage connected to the cylinder 85
- the exhaust valve 882 opens and closes an exhaust passage connected to the cylinder 85.
- a crankshaft 871 and a connecting rod 872 are received in the lower case 84 such that the reciprocation of the piston 86 is converted into rotation of the crankshaft 871.
- a compression ratio change mechanism which includes the drive force transmission apparatus 10, an electric motor 17, a plurality of worms 18 and a plurality of worm wheels 19, is provided in the cylinder block 83.
- rotation in a clockwise direction (CW direction) will be referred to as normal rotation
- rotation in a counterclockwise direction (CCW direction) will be referred to as reverse rotation.
- the drive force transmission apparatus 10 transmits a rotational force of the motor 17 in the normal rotational direction to the worms 18 at the same rotational speed as that of the motor 17.
- the drive force transmission apparatus 10 transmits a rotational force of the motor 17 in the reverse rotational direction to the worms 18 at a decreased rotational speed, which is decreased from the rotational speed of the motor 17.
- the cylinder block 83 is placed at its lowermost operational position relative to the lower case 84. At this time, a volume of the combustion chamber 89 is minimum, and a change in the volume of the combustion chamber 89, which occurs upon the movement of the piston 86, is maximum. Thus, the operational state of the engine becomes a state of a high compression ratio (hereinafter referred to a high compression ratio state).
- the cam cover 81 , the cylinder head 82 and the cylinder block 83 are moved upward relative to the lower case 84, and an operational position of an upper end of the cam cover 81 is moved to a location indicated with a dotted line in FIG. 4.
- the volume of the combustion chamber 89 is increased, and thereby a change in the volume of the combustion chamber 89, which occurs upon the movement of the piston 86, is decreased.
- the operational state of the engine becomes a state of a low compression ratio (hereinafter referred to as a low compression ratio state).
- An application direction of a combustion pressure of the combustion chamber 89 to the cylinder block 83 is the same as the moving direction of the cam cover 81 , the cylinder head 82 and the cylinder block 83 at the time of occurrence of the change from the high compression ratio side (state) to the low compression ratio side (state). Therefore, a large drive force is not required. As a result, the drive force transmission apparatus 10 can rapidly move the cylinder block 83 by transmitting the rotation of the motor 17 to the worms 18 at the same rotational speed as that of the motor 17.
- the cam cover 81, the cylinder head 82 and the cylinder block 83 are moved downward relative to the lower case 84.
- the volume of the combustion chamber 89 is decreased, and thereby a change in the volume of the combustion chamber 89, which occurs upon the movement of the piston 86, is increased.
- the operational state of the engine becomes the high compression ratio state.
- the cylinder block 83 needs to be lowered against the combustion pressure of the combustion chamber 89. Therefore, the drive force transmission apparatus 10 decreases the speed of the rotation transmitted from the motor 17 and thereby outputs a high torque.
- the drive force transmission apparatus 10 includes a housing 60, an input side support plate 61 , an output side support plate 62, an input shaft 11 , an output shaft 12, an input side sub-shaft 51 and an output side sub-shaft 52.
- the input shaft 11 and the input side sub-shaft 51 are rotatably supported by bearings 63, 64, respectively, which are fixed to the input side support plate 6 .
- the output shaft 12 and the output side sub-shaft 52 are rotatably supported by bearings 65, 66, respectively, which are fixed to the output side support plate 62.
- the output shaft 12 is rotatably supported by a bearing 67, which is fixed to the housing 60.
- the input side sub-shaft 51 is rotatably supported by a bearing 68, which is fixed to the housing 60.
- the input shaft 11 and the output shaft 12 are rotatable about a rotational axis P.
- the input side sub-shaft 51 and the output side sub-shaft 52 are rotatable about a rotational axis Q, which is generally parallel to the rotational axis P.
- the input shaft 11 is connected to a power source, such as the electric motor.
- the output shaft 12 is connected to a subject mechanism, such as the actuator. In addition to or in place of the output shaft 12, the output side sub-shaft 52 may be connected to the subject mechanism.
- the input shaft 11 and the output shaft 12 are connected with each other through a coupling 20 and a one-way clutch 30.
- the coupling 20 includes an input rotor 21 , an intermediate rotor 23 and a spring 29 and generates a rotational time lag between the input shaft 11 and an intermediate shaft 13.
- the one-way clutch 30 includes the intermediate shaft 13 and an outer race 31.
- the intermediate shaft 13 is formed integrally with the intermediate rotor 23 and forms an inner race 32.
- the outer race 31 is formed integrally with the output shaft 12.
- the one-way clutch 30 transmits the rotational force of the intermediate shaft 13 in the normal rotational direction to the output shaft 12.
- the one-way clutch 30 frees the output shaft 12 from the intermediate shaft 13 to enable rotation of the intermediate shaft 13 relative to the output shaft 12. Furthermore, the input side sub-shaft 51 and the output side sub-shaft 52 are connected to each other through a two-way clutch 50.
- the coupling 20, the one-way clutch 30 and the two-way clutch 50 will be described in detail later.
- An input gear 41 is fixed to the input shaft 11 , and a first gear 42 is fixed to the input side sub-shaft 51. Furthermore, a second gear 43 is fixed to the output side sub- shaft 52, and an output gear 44 is fixed to the output shaft 12.
- the input gear 41 , the first gear 42, the second gear 43 and the output gear 44 are formed as spur gears, respectively.
- the input gear 41 and the first gear 42 are meshed, i.e., are engaged with each other, and the second gear 43 and the output gear 44 are meshed, i.e., engaged with each other.
- the number of teeth of the first gear 42 is larger than the number of teeth of the input gear 41.
- a diameter of a pitch circle of the first gear 42 is larger than a diameter of a pitch circle of the input gear 41.
- the rotation of the input shaft 11 is transmitted to the input side sub-shaft 51 such that the direction of the rotation of the input side sub-shaft 51 becomes opposite from the direction of the rotation of the input shaft 11 , and the speed of the rotation of the input side sub-shaft 51 is decreased from the speed of the rotation of the input shaft 11.
- the number of teeth of the output gear 44 is larger than the number of teeth of the second gear 43, and a diameter of a pitch circle of the output gear 44 is larger than a diameter of a pitch circle of the second gear 43.
- the rotation of the output side sub-shaft 52 is transmitted to the output shaft 12 such that the direction of the rotation of the output shaft 12 becomes opposite from the direction of the rotation of the output side sub-shaft 52, and the speed of the rotation of the output shaft 12 is decreased from the speed of the rotation of the output side sub-shaft 52.
- the one-way clutch 30 includes the outer race 31 , the inner race 32, a plurality of rollers 33 and a plurality of springs 34.
- the rollers 33 are arranged in an annular gap, which is radially defined between the outer race 31 and the inner race 32.
- a plurality of wedges 31a is formed in an inner peripheral wall of the outer race 31 to correspond with the rollers 33, respectively.
- Each roller 33 is adapted to be clamped between the corresponding wedge 31a and the inner race 32 at one circumferential side part (clockwise side part in FIGS. 5A-5F) of the wedge 31a and is adapted to be released to be free at the other circumferential side part (counterclockwise side part in FIGS. 5A-5F) of the wedge 31a.
- Each spring 34 is placed at a corresponding location between corresponding circumferentially adjacent two of the rollers 33 to urge the corresponding one of the rollers 33 against the outer race 31.
- FIG. 5C shows a case where the inner race 32, which now serves as a driving- side shaft, is driven to rotate in the clockwise direction relative to the outer race 31.
- FIG. 5D shows a case where the outer race 31 , which now serves as a driving-side shaft, is driven to rotate in the counterclockwise direction relative to the inner race 32.
- each roller 33 is clamped between the corresponding wedge 31a and the inner race 32, so that the rotational force of the driving-side shaft is transmitted to a driven-side shaft, which is driven by the driving-side shaft, through the rollers 33.
- a drive force transmitting state in which the drive force is transmitted from the driving-side shaft to the driven-side shaft, is established when a relationship of Rin > Rout is satisfied.
- Rin denotes the rotational speed of the inner race 32
- Rout denotes the rotational speed of the outer race 31.
- the rotation in the clockwise direction is positive (i.e., the rotational speed of the rotation in the clockwise direction is a positive value)
- the rotation in the counterclockwise direction is negative (i.e., the rotational speed of the rotation in the counterclockwise direction is a negative value).
- FIG. 5E shows a case where the inner race 32, which now serves as the driving-side shaft, is driven to rotate in the counterclockwise direction relative to the outer race 31.
- FIG. 5F shows a case where the outer race 31 , which now serves as the driving-side shaft, is driven to rotate in the clockwise direction relative to the inner race 32.
- each roller 33 is slid between the outer race 31 and the inner race 32, and thereby the rotational force of the driving-side shaft is not transmitted to the driven-side shaft.
- the driven-side shaft is freed to enable rotation of the driving-side shaft relative to the driven-side shaft.
- the freed state of the driven-side shaft is established (establishment of the decoupled state).
- each of the drive force transmitting state (coupled state) and the freed state (decoupled state) occurs depending on the direction of the relative rotation between the outer race 31 and the inner race 32 including the relative rotation, in which one of the outer race 31 and the inner race 32 is stopped.
- the rotation of a predetermined switching angle ⁇ 1 is required when the operational state is changed from the freed state (decoupled state), in which each roller 33 is released from the wedge 31a, to the drive force transmitting state (coupled state), in which the roller 33 is clamped by the wedge 31a, and vice versa.
- the switching angle ⁇ 1 corresponds to a backlash.
- the two-way clutch 50 includes the input side sub-shaft 51 (forming the outer race), the output side sub-shaft 52 (forming the inner race), a plurality of rollers 53, a retainer 54, a slide spring 55 and a case 56.
- the retainer 54 retains the rollers 53. Radially inner end portions 55a of the slide spring 55 are engaged with the retainer 54, and a slide portion 55b of the slide spring 55, which is located on a radially outer side of the radially inner end portions 55a, contacts an inner peripheral wall of the case 56 and is urged against the inner peripheral wall of the case 56.
- the case 56 is fixed to the housing 60 and holds an outer peripheral portion of the input side sub-shaft 51. Furthermore, the case 56 rotatably supports the output side sub-shaft 52 through a bearing 57.
- FIG. 6B shows a case where the input side sub-shaft (outer race) 51 is rotated as the driving-side shaft. At this time, rotation of the retainer 54 in the rotational direction of the input side sub-shaft (the outer race) 51 is resisted due to presence of a slide resistance between the case 56 and the slide spring 55. Therefore, relative rotation of each roller 53 in an opposite direction, which is opposite from the rotational direction of the input side sub-shaft 51 , occurs.
- FIG. 6C shows a case where the output side sub-shaft (inner race) 52 is rotated as the driving-side shaft.
- the retainer 54 and the input side sub- shaft 51 do not move.
- Each roller 53 is placed in a corresponding recess 51b of the input side sub-shaft 51 , which is radially outwardly recessed in an inner peripheral surface of the input side sub-shaft 51. Therefore, the roller 53 cannot be clamped between the input side sub-shaft 51 and the output side sub-shaft 52, and thereby only the output side sub-shaft 52 is rotated.
- the rotational force is not transmitted from the output side sub-shaft 52 to the input side sub-shaft 51 regardless of the rotational direction of the output side sub-shaft 52 when the relationship of Sin ⁇ Sout is satisfied.
- the input side sub-shaft 51 is freed from the output side sub- shaft 52 to enable rotation of the output side sub-shaft 52 relative to the input side sub- shaft 51.
- the rotation of a predetermined switching angle ⁇ 2 which corresponds to a backlash, is required when the operational state of the two-way clutch 50 is changed from the freed state (decoupled state) to the drive force transmitting state (coupled state), and vice versa.
- the coupling 20 includes the input rotor 21 , the intermediate rotor 23 and the spring 29.
- the input rotor 21 is configured into a cylindrical form.
- the spring 29 is a coil spring.
- the input rotor 21 is formed coaxially and integrally with the input shaft 11.
- the intermediate rotor 23 is formed coaxially and integrally with the intermediate shaft 13.
- the input rotor 21 includes a plurality (two in this instance) of projections 22, which axially project from an intermediate rotor 23 side end surface of the input rotor 21.
- Each projection 22 is configured into a sector shape.
- the intermediate rotor 23 includes a plurality (two in this instance) of stoppers 24, which are formed in an input rotor 21 side end surface of the intermediate rotor 23.
- Each stopper 24 is configured into a sector shape.
- the projections 22 are arranged symmetrically about the rotational axis P, and the stoppers 24 are arranged symmetrically about the rotational axis P.
- Each projection 22 is circumferentially placed between the stoppers 24 such that relative rotation of the projection 22 relative to the stoppers 24 is enabled within a predetermined play angle ⁇ .
- the relative rotation of the projection 22 from an initial position, at which the projection 22 contacts a clockwise side outer wall 25 of the stopper 24, to a limit position, at which the projection 22 contacts a counterclockwise side outer wall 26 of the stopper 24, is enabled through the play angle ⁇ .
- the projection 22 contacts the outer wall 26 of the stopper 26 to rotate integrally therewith, as shown in FIG. 7C. In this way, the transmission of the drive force from the input rotor 21 to the intermediate rotor 23 is enabled.
- the input gear 41 , the first gear 42, the second gear 43 and the output gear 44 serve as an input transmitting member, a first transmitting member, a second transmitting member and an output transmitting member, respectively.
- the one-way clutch 30 serves as a one-way rotational force transmitting member
- the two-way clutch 50 serves as a two-way rotational force transmitting member.
- the coupling 20 serves as an idler coupler member.
- FIGS. 8A and 8B a bold solid line indicates a transmitted drive force Fd, and an intermediate-width dotted line indicates a non-drive force Fn, which is a rotational force other than the drive force Fd. Furthermore, a narrow solid line with an arrow head indicates the clockwise (CW) direction or the counterclockwise (CCW) direction.
- CW clockwise
- CCW counterclockwise
- the rotational speed Rin of the inner race 32 of the one-way clutch 30 is the positive value.
- the rotational speed Rout of the outer race 31 is regarded as zero, the relationship of Rin > Rout is satisfied. Therefore, the rotational force of the input shaft 11 in the normal rotational direction (the clockwise direction, i.e., CW direction) is transmitted to the output shaft 2 though the one-way clutch 30 to rotate the output shaft 12 in the normal rotational direction (the clockwise direction, i.e., CW direction) at the same rotational speed as that of the motor 17 and the input shaft 11 (see FIG. 5C).
- the input side sub-shaft 51 is rotated in the reverse rotational direction (the counterclockwise direction, i.e., CCW direction) at the decreased rotational speed, which is decreased from the rotational speed of the input shaft 11 , due to the engagement between the input gear 41 and the first gear 42.
- the output side sub-shaft 52 is rotated in the reverse rotational direction (the counterclockwise direction, i.e., CCW direction) at the increased rotational speed, which is increased from the rotational speed of the input shaft 11 and the output shaft 12, due to the engagement between the output gear 44 and the second gear 43.
- the rotational speed Sout of the inner race (output side sub-shaft) 52 becomes higher than the rotational speed Sin of the outer race (the input side sub-shaft) 51 to satisfy the relationship of Sin ⁇ Sout.
- the output side sub-shaft 52 is freed from the input side sub-shaft 51 to enable relative rotation between the output side sub-shaft 52 and the input side sub-shaft 51 (see FIG. 6C).
- the rotational force of the input side sub-shaft 51 in the normal rotational direction (the clockwise direction, i.e., CW direction) is transmitted to the output side sub-shaft 52 (see FIG. 6B).
- the output shaft 12 is rotated in the reverse rotational direction (the counterclockwise direction, i.e., CCW direction) at the decreased rotational speed due to the engagement between the second gear 43 and the output gear 44.
- the rotational force of the input shaft 11 in the reverse rotational direction is transmitted to the output shaft 12 at the decreased speed, which is decreased from the rotational speed of the input shaft 11.
- the rotational force of the input shaft 11 in the reverse rotational direction (the counterclockwise direction, i.e., CCW direction) is transmitted to the intermediate shaft 13 through the coupling 20.
- the rotational speed Rin of the inner race 32 is the negative value.
- the rotational speed Rout of the outer race 31 is regarded as zero, the relationship of Rin ⁇ Rout is satisfied. Therefore, the output shaft 12 is freed from the intermediate shaft 13 to enable the relative rotation between the output shaft 12 and the intermediate shaft 13 (see FIG. 5E).
- FIG. 9A shows a timing chart for a drive force transmission apparatus of a comparative example, which does not have the coupling.
- n(1/s) the number of rotations of the input shaft 11 per second, i.e., the rotational speed of the input shaft 11 (a positive value in the case of the normal rotation, and a negative value in the case of the reverse rotation).
- the input side speed reducing ratio is also referred to as an input side speed change ratio.
- the time period T1 and the time period T2 are expressed with the following equations (1 ) and (2).
- the relationship of T2>T1 is satisfied as indicated in FIG. 9A.
- the operational state of the one-way clutch 30 is changed from the freed state (decoupled state) to the drive force transmitting state (coupled state) upon elapse of the time period T1 from the time point tO
- the operational state of the two-way clutch 50 is changed from the drive force transmitting state (coupled state) to the freed state (decoupled state) upon elapse of the time period T2 from the time point tO. Therefore, the one-way clutch 30 and the two-way clutch 50 are simultaneously held in the drive force transmitting state (coupled state) in shaded ranges of FIG. 9A, thereby resulting in occurrence of the phenomenon known as deadlock.
- the coupling 20, which has the play angle ⁇ is provided in the present embodiment.
- the play angle ⁇ is set to satisfy the following equation (3).
- a time period ⁇ is defined as follows.
- ⁇ (seconds) a time period required for the input shaft 11 to rotate relative to the intermediate shaft 13 through the play angle ⁇
- the time period ⁇ is an operational time lag of the intermediate shaft 13 at the time of changing the rotation of the input shaft 11 from the reverse rotation to the normal rotation. Therefore, as indicated in the timing chart of FIG. 9B, the operational state of the one-way clutch 30 is changed from the freed state (decoupled state) to the drive force transmitting state (coupled state) upon elapse of the time period ( ⁇ 1 + ⁇ ) from the time point tO.
- the one-way clutch 30 and the two-way clutch 50 are not simultaneously held in the drive force transmitting state (coupled state), so that the occurrence of the deadlock can be advantageously avoided.
- each projection 22 is returned to the initial position thereof by the spring 29 of the coupling 20. Therefore, the rotational time difference between the input shaft 11 and the intermediate shaft 13 is not generated by the presence of the play angle ⁇ . Thereby, the behavior, which is similar to that of the comparative example shown in FIG. 9A, occurs.
- the drive force transmission apparatus 10 of the present embodiment can implement the mechanism that cannot be implemented by the combination of the two-way clutches of the prior arts.
- the drive force transmission apparatus 10 of the present embodiment can implement the mechanism that can automatically change between the drive force transmission, which results in the same rotational speed of the output shaft that is the same as the rotational speed of the input shaft, and the drive force transmission, which results in the decreased rotational speed of the output shaft that is decreased from the rotational speed of the input shaft, at the time of normal rotation of the input shaft and at the time of reverse rotation of the input shaft, respectively, by using the one-way clutch 30 and the two- way clutch 50.
- the drive force transmission apparatus 10 does not include an external control device and a drive force selecting device driven with an external drive force, so that the structure of the drive force transmission apparatus 10 is simple and has a compact size, thereby enabling a reduction in the number of components and the costs. Also, the operation of the drive force transmission apparatus 10 is more reliable, so that the reliability of the drive force transmission apparatus 10 can be improved.
- the play angle ⁇ can be produced with the coupling 20. Furthermore, the play angle ⁇ is set to satisfy the above equation (3). In this way, it is possible to eliminate the possibility of the simultaneous occurrence of the drive force transmitting state (coupled state) of the one-way clutch 30 and the drive force transmitting state (coupled state) of the two-way clutch 50, and thereby it is possible to limit the occurrence of the deadlock.
- each projection 22 is always rotated from the initial position through the play angle ⁇ and finally contacts the outer wall 26 of the corresponding stopper 24 because of the provision of the spring 29 in the coupling 20. Therefore, it is possible to more reliably limit the occurrence of the deadlock.
- the rotation of the input shaft 11 is transmitted to the input side sub-shaft 51 at the decreased rotational speed due to the relationship between the input gear 41 and the first gear 42. Furthermore, the rotation of the output side sub-shaft 52 is transmitted to the output shaft 12 at the decreased rotational speed due to the relationship between the second gear 43 and the output gear 44. That is, “the transmission of rotation at the decreased rotational speed” is followed by “the transmission of rotation at the decreased rotational speed”, and the drive force transmission apparatus 10 has "the decreased rotational speed of the output shaft 12 relative to the rotational speed of the input shaft 11 as a whole".
- the output shaft 12 which forms the outer race of the one-way clutch 30, is freed from the intermediate shaft 13, which forms the inner race of the one-way clutch 30, thereby causing the relative rotation between the output shaft 12 and the intermediate shaft 13.
- the rotational speed of the output shaft 12 must be lower than the rotational speed of the input shaft 11. That is, the drive force transmission apparatus 10 must have the decreased rotational speed of the output shaft 12, which is decreased from the rotational speed of the input shaft 11 , as a whole.
- the relationship between the rotational speed of the input shaft 11 and the rotational speed of the input side sub-shaft 51 and the relationship between the rotational speed of the output side sub-shaft 52 and the rotational speed of the output shaft 12 are not limited to the above-described ones of “the transmission of rotation at the decreased rotational speed followed by the transmission of rotation at the decreased rotational speed” and may be changed to "the transmission of rotation at the same rotational speed followed by the transmission of rotation at the decreased rotational speed” or "the transmission of rotation at the decreased rotational speed followed by the transmission of rotation at the same rotational speed", if desired.
- the relationship between the rotational speed of the input shaft 11 and the rotational speed of the input side sub-shaft 51 and the relationship between the rotational speed of the output side sub-shaft 52 and the rotational speed of the output shaft 12 may be "the transmission of rotation at a slightly increased rotational speed followed by the transmission of rotation at a significantly decreased rotational speed” or "the transmission of rotation at a significantly decreased rotational speed followed by the transmission of rotation at a slightly increased rotational speed", so that the drive force transmission apparatus 10 has the decreased rotational speed of the output shaft 12, which is decreased from the rotational speed of the input shaft 11, as a whole.
- Each of these modifications can be implemented by adjusting the numbers of teeth of the engaged gears, which are engaged with each other and/or the pitch circle diameters of the engaged gears.
- the output side sub-shaft 52 may be connected to the subject mechanism in place of or in addition to the output shaft 12 (see FIG. 1). In this way, it is possible to select one of two output characteristics or to use a combination of the two output characteristics. As discussed in the above section (A), the applicable technical field of the drive force transmission apparatus 10 can be widened by appropriately selecting the relationship of the rotational speed of the output side sub- shaft 52 and the rotational speed of the output shaft 12.
- Each transmitting member which transmits the rotational force from the input shaft 11 to the output shaft 12, is not limited to the spur gear and may be changed to any other appropriate member, which can implement the synchronized transmission, such as a bevel gear, a worm, a planetary gear, a frictional transmission member, a combination of a belt and a pulley, or a combination of a chain and a sprocket.
- the one-way rotational force transmitting member is not limited to the one- way clutch and may be changed to any other appropriate member
- the two-way rotational force transmitting member is not limited to the two-way clutch and may be changed to any other appropriate member.
- a ratchet which allows movement in only one direction, may be used.
- the outer race 31 of the one-way clutch 30 is formed integrally with the output shaft 12, and the inner race 32 is formed integrally with the intermediate shaft 13.
- the outer race 31 may be formed separately from the output shaft 12 and may be thereafter coaxially joined to the output shaft 12.
- the inner race 32 may be formed separately from the intermediate shaft 13 and may be thereafter coaxially joined to the intermediate shaft 13.
- two projections 72a are formed in the input rotor 71a
- two stoppers 74a are formed in the intermediate rotor (output rotor) 73a.
- each projection 72a contacts an outer wall 76a of the corresponding stopper 74a to enable transmission of a drive force from the input rotor 71a to the intermediate rotor 73a.
- two projections 72b are formed in an input rotor 71b, and a stopper 74b, which has two diametrically opposed parallel sides (two outer walls 76b), is formed in the intermediate rotor (output rotor) 73b.
- a stopper 74b which has two diametrically opposed parallel sides (two outer walls 76b)
- the intermediate rotor (output rotor) 73b is formed in the intermediate rotor (output rotor) 73b.
- two projections 72c are formed in the input rotor 71c, and a stopper 74c, which has two holes, is formed in the intermediate rotor (output rotor) 73c to receive the projections 72c, respectively.
- each projection 72c contacts an inner peripheral wall 76c of the corresponding hole of the stopper 74c to enable transmission of a drive force from the input rotor 71 c to the intermediate rotor 73c.
- each projection 72d is made of a resilient material, such as rubber.
- the projections 72d are provided in the intermediate rotor (input rotor) 71 d, and four stoppers 74d are provided in the intermediate rotor 73d.
- each projection 72d contacts an outer wall 76d of the corresponding stopper 74d to enable transmission of a drive force from the input rotor 71 d to the intermediate rotor (output rotor) 73d. Since the projections 72d are made of the resilient material, it is possible to limit the generation of impact noise upon abutment, i.e., contact of each projection 72d against the corresponding stopper 74d.
- FIGS. 7A to 7E and 10A to 10D may be modified as follows. Specifically, the projection(s) 22, 72a-72d may be provided in the intermediate rotor (output rotor) 23, 73a-73d, and the stopper(s) 24, 74a-74d may be provided in the input rotor 21 , 71a-71d.
- the input rotor 21 of the coupling 20 is formed integrally with the input shaft 11
- the intermediate rotor 23 is formed integrally with the intermediate shaft 13.
- the input rotor 21 may be formed separately from the input shaft 11 and may be thereafter coaxially joined to the input shaft 11.
- the intermediate rotor 23 may be formed separately from the intermediate shaft 13 and may be thereafter coaxially joined to the intermediate shaft 13.
- the urging member (urging means) of the coupling 20 is not limited to the spring 29.
- the urging member may be implemented by electromagnetic force exerting means (device).
- the idler coupler member is not limited to the coupling 20 of the above embodiment.
- the idler coupler member may be any other form of coupling, a bellows tube or a torsion resilient member.
- the input shaft 11 and the intermediate shaft 13 may be directly connected with each other by eliminating the coupling 20. In such a case, the input shaft 11 may form the inner race 32 of the one-way clutch 30.
- the clockwise direction (CW direction) is defined as the normal rotational direction
- the counterclockwise direction (CCW direction) is defined as the reverse rotational direction
- the clockwise direction (CW direction) may be defined as the reverse rotational direction
- the counterclockwise direction (CCW direction) may be defined as the normal rotational direction.
- the drive force transmission apparatus of the present invention is not necessarily implemented in the variable compression ratio engine and may be implemented in various other apparatuses or systems, in which the input-to-output speed ratio between the input shaft and the output shaft and the transmission torque from the input shaft to the output shaft are changed.
- the present invention is not limited the above embodiments and modifications thereof. That is, the above embodiments and modifications thereof may be modified in various ways without departing from the sprit and scope of the invention.
Landscapes
- Engineering & Computer Science (AREA)
- General Engineering & Computer Science (AREA)
- Mechanical Engineering (AREA)
- Chemical & Material Sciences (AREA)
- Combustion & Propulsion (AREA)
- Structure Of Transmissions (AREA)
- Transmission Devices (AREA)
Abstract
Description
Claims
Priority Applications (3)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| CN201280014028.XA CN103534464B (en) | 2011-03-22 | 2012-01-16 | drive transmission equipment |
| US14/005,366 US9334926B2 (en) | 2011-03-22 | 2012-01-16 | Drive force transmission apparatus |
| DE112012001385.9T DE112012001385T8 (en) | 2011-03-22 | 2012-01-16 | Driving force transmitting device |
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| JP2011063012A JP5567517B2 (en) | 2011-03-22 | 2011-03-22 | Power transmission device |
| JP2011-063012 | 2011-03-22 |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| WO2012127897A1 true WO2012127897A1 (en) | 2012-09-27 |
Family
ID=45563476
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| PCT/JP2012/051283 Ceased WO2012127897A1 (en) | 2011-03-22 | 2012-01-16 | Drive force transmission apparatus |
Country Status (5)
| Country | Link |
|---|---|
| US (1) | US9334926B2 (en) |
| JP (1) | JP5567517B2 (en) |
| CN (1) | CN103534464B (en) |
| DE (1) | DE112012001385T8 (en) |
| WO (1) | WO2012127897A1 (en) |
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| CN103001395A (en) * | 2012-12-26 | 2013-03-27 | 中国石油集团长城钻探工程有限公司顶驱技术分公司 | Top drive system |
| CN103016690A (en) * | 2012-12-26 | 2013-04-03 | 中国石油集团长城钻探工程有限公司顶驱技术分公司 | Split-type gear box of top drive drilling system |
| CN104913011A (en) * | 2015-06-16 | 2015-09-16 | 南京高精齿轮集团有限公司 | High-speed debugging gear box special for locomotive engine test bed |
| EP3106698A1 (en) * | 2015-06-17 | 2016-12-21 | Phoenix Mecano Komponenten AG | Mechanical transmission with integrated load torque lock |
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| WO2013126802A2 (en) * | 2012-02-23 | 2013-08-29 | Brian Schoolcraft | Electromagnetically-actuated direction-sensing roller clutch |
| CN103277490B (en) * | 2013-05-23 | 2016-02-10 | 中国石油集团长城钻探工程有限公司顶驱技术分公司 | Alignment bearing and oil sealing configuration structure under gear-box are driven in top |
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| WO2018102367A1 (en) | 2016-11-29 | 2018-06-07 | Sharkninja Operating Llc | Direction controlled gearbox for appliance |
| KR200491381Y1 (en) * | 2019-06-21 | 2020-03-30 | 윤길수 | DC-motor Power Transfer Device in Rotational Link |
| CN110513449A (en) * | 2019-08-23 | 2019-11-29 | 吴有智 | Semi-automatic gear shifting and torque-reducing auxiliary transmission mechanism |
| CN110985614B (en) * | 2019-12-04 | 2023-09-05 | 西南大学 | Self-adaptive automatic speed change assembly with transmission sensing function |
| CN111156292A (en) * | 2020-01-15 | 2020-05-15 | 上海施步新能源科技有限公司 | mechanical transmission |
| CN114962564A (en) * | 2021-02-24 | 2022-08-30 | 常州智一实业投资合伙企业(有限合伙) | Direct-transmission power output gear shifter |
| CN113883239B (en) * | 2021-10-19 | 2023-07-14 | 哈尔滨工业大学 | A clutch with passive double reduction ratio |
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| Publication number | Priority date | Publication date | Assignee | Title |
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| CN103001395A (en) * | 2012-12-26 | 2013-03-27 | 中国石油集团长城钻探工程有限公司顶驱技术分公司 | Top drive system |
| CN103016690A (en) * | 2012-12-26 | 2013-04-03 | 中国石油集团长城钻探工程有限公司顶驱技术分公司 | Split-type gear box of top drive drilling system |
| CN103001395B (en) * | 2012-12-26 | 2015-06-17 | 中国石油集团长城钻探工程有限公司顶驱技术分公司 | Top drive system |
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| CN104913011B (en) * | 2015-06-16 | 2018-01-19 | 南京高精齿轮集团有限公司 | Locomotive engine testing stand specialized high-speed debugs gear-box |
| EP3106698A1 (en) * | 2015-06-17 | 2016-12-21 | Phoenix Mecano Komponenten AG | Mechanical transmission with integrated load torque lock |
Also Published As
| Publication number | Publication date |
|---|---|
| JP5567517B2 (en) | 2014-08-06 |
| US20140007723A1 (en) | 2014-01-09 |
| DE112012001385T5 (en) | 2014-01-02 |
| DE112012001385T8 (en) | 2014-04-10 |
| CN103534464A (en) | 2014-01-22 |
| CN103534464B (en) | 2016-05-04 |
| JP2012197890A (en) | 2012-10-18 |
| US9334926B2 (en) | 2016-05-10 |
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