VEHICLE DRIVING APPARATUS
20190329658 ยท 2019-10-31
Assignee
Inventors
- Teruhiko NAKAZAWA (Nagakute-shi, JP)
- Ryoichi HIBINO (Nagakute-shi, JP)
- Makoto KUSAKABE (Nagakute-shi, JP)
- Yasumitsu Osada (Nagakute-shi, JP)
- Shoji NAKAHARA (Nagakute-shi, JP)
- Hiroyuki NISHIZAWA (Nagakute-shi, JP)
- Yasuhiro TORII (Okazaki-shi, JP)
Cpc classification
B60K17/04
PERFORMING OPERATIONS; TRANSPORTING
Y02T10/72
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
B60K1/02
PERFORMING OPERATIONS; TRANSPORTING
B60L2220/42
PERFORMING OPERATIONS; TRANSPORTING
F16H57/0006
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H3/727
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02T10/64
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
F16H3/724
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16H57/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A vehicle driving apparatus includes a first motor, a second motor, and a planetary mechanism, and obtains a driving force by combining motive forces obtained from the first motor and the second motor by a planetary gear of the planetary mechanism. The vehicle driving apparatus includes at least one of a design value and a control quantity in which a frequency ratio between a sound generated by a rotation of the first motor and a sound generated by a rotation of the second motor satisfies a reduction condition of dissonance.
Claims
1. A vehicle driving apparatus which obtains a driving force by combining a motive force of a first motor and a motive force of a second motor by a planetary mechanism, the vehicle driving apparatus comprising: at least one of a design value and a control quantity in which a frequency ratio between a sound generated by a rotation of the first motor and a sound generated by a rotation of the second motor satisfies a reduction condition of dissonance.
2. The vehicle driving apparatus according to claim 1, wherein a design item included in at least one of the first motor, tire second motor, and the planetary mechanism is set to a design value which satisfies the reduction condition of the dissonance.
3. The vehicle driving apparatus according to claim 2, wherein at least one gear included in the planetary mechanism has a number of teeth which satisfies the reduction condition of the dissonance.
4. The vehicle driving apparatus according to claim 1, wherein at least one of the first motor and the second motor is controlled to a number of rotations which satisfies the reduction condition of the dissonance.
5. The vehicle driving apparatus according to claim 4, wherein at least one of the first motor and the second motor is controlled such that a difference in the number of rotations between the first motor and the second motor satisfies the reduction condition of the dissonance.
6. The vehicle driving apparatus according to claim 2, wherein at least one of the first motor and the second motor is controlled to a number of rotations which satisfies the reduction condition of the dissonance.
7. The vehicle driving apparatus according to claim 6, wherein at least one of the first motor and the second motor is controlled such that a difference in the number of rotations between the first motor and the second motor satisfies the reduction condition of the dissonance.
8. The vehicle driving apparatus according to claim 3, wherein at least one of the first motor and the second motor is controlled to a number of rotations which satisfies the reduction condition of the dissonance.
9. The vehicle driving apparatus according to claim 8, wherein at least one of the first motor and the second motor is controlled such that a difference in the number of rotations between the first motor and the second motor satisfies the reduction condition of the dissonance.
10. The vehicle driving apparatus according to claim 1, wherein as the reduction condition of the dissonance, a condition is set in which a frequency ratio f.sub.M1/f.sub.M2 between a frequency f.sub.M1 of the sound generated by the rotation of the first motor and a frequency f.sub.M2 of the sound generated by the rotation of the second motor satisfies one of:
f.sub.M1/f.sub.M2<0.87;(condition 1)
0.9943<f.sub.M1/f.sub.M2<1.0057; and(condition 2)
1.14<f.sub.M1/f.sub.M2.(condition 3)
11. The vehicle driving apparatus according to claim 2, wherein as the reduction condition of the dissonance, a condition is set in which a frequency ratio f.sub.M1/f.sub.M2 between a frequency f.sub.M1 of the sound generated by the rotation of the first motor and a frequency f.sub.M2 of the sound generated by the rotation of the second motor satisfies one of:
f.sub.M1/f.sub.M2<0.87;(condition 1)
0.9943<f.sub.M1/f.sub.M2<1.0057; and(condition 2)
1.14<f.sub.M1/f.sub.M2.(condition 3)
12. The vehicle driving apparatus according to claim 3, wherein as the reduction condition of the dissonance, a condition is set in which a frequency ratio f.sub.M1/f.sub.M2 between a frequency f.sub.M1 of the sound generated by the rotation of the first motor and a frequency f.sub.M2 of the sound generated by the rotation of the second motor satisfies one of:
f.sub.M1/f.sub.M2<0.87;(condition 1)
0.9943<f.sub.M1/f.sub.M2<1.0057; and(condition 2)
1.14<f.sub.M1/f.sub.M2.(condition 3)
13. The vehicle driving apparatus according to claim 4, wherein as the reduction condition of the dissonance, a condition is set in which a frequency ratio f.sub.M1/f.sub.M2 between a frequency f.sub.M1 of the sound generated by the rotation of the first motor and a frequency f.sub.M2 of the sound generated by the rotation of the second motor satisfies one of:
f.sub.M1/f.sub.M2<0.87;(condition 1)
0.9943<f.sub.M1/f.sub.M2<1.0057; and(condition 2)
1.14<f.sub.M1/f.sub.M2.(condition 3)
14. The vehicle driving apparatus according to claim 5, wherein as the reduction condition of the dissonance, a condition is set in which a frequency ratio f.sub.M1/f.sub.M2 between a frequency f.sub.M1 of the sound generated by the rotation of the first motor and a frequency f.sub.M2 of the sound generated by the rotation of the second motor satisfies one of:
f.sub.M1/f.sub.M2<0.87;(condition 1)
0.9943<f.sub.M1/f.sub.M2<1.0057; and(condition 2)
1.14<f.sub.M1/f.sub.M2.(condition 3)
15. The vehicle driving apparatus according to claim 6, wherein as the reduction condition of the dissonance, a condition is set in which a frequency ratio f.sub.M1/f.sub.M2 between a frequency f.sub.M1 of the sound generated by the rotation of the first motor and a frequency f.sub.M2 of the sound generated by the rotation of the second motor satisfies one of:
f.sub.M1/f.sub.M2<0.87;(condition 1)
0.9943<f.sub.M1/f.sub.M2<1.0057; and(condition 2)
1.14<f.sub.M1/f.sub.M2.(condition 3)
16. The vehicle driving apparatus according to claim 7, wherein as the reduction condition of the dissonance, a condition is set in which a frequency ratio f.sub.M1/f.sub.M2 between a frequency f.sub.M1 of the sound generated by the rotation of the first motor and a frequency f.sub.M2 of the sound generated by the rotation of the second motor satisfies one of:
f.sub.M1/f.sub.M2<0.87;(condition 1)
0.9943<f.sub.M1/f.sub.M2<1.0057; and(condition 2)
1.14<f.sub.M1/f.sub.M2.(condition 3)
17. The vehicle driving apparatus according to claim 8, wherein as the reduction condition of the dissonance, a condition is set in which a frequency ratio f.sub.M1/f.sub.M2 between a frequency f.sub.M1 of the sound generated by the rotation of the first motor and a frequency f.sub.M2 of the sound generated by the rotation of the second motor satisfies one of:
f.sub.M1/f.sub.M2<0.87;(condition 1)
0.9943<f.sub.M1/f.sub.M2<1.0057; and(condition 2)
1.14<f.sub.M1/f.sub.M2.(condition 3)
18. The vehicle driving apparatus according to claim 9, wherein as the reduction condition of the dissonance, a condition is set in which a frequency ratio f.sub.M1/f.sub.M2 between a frequency f.sub.M1 of the sound generated by the rotation of the first motor and a frequency f.sub.M2 of the sound generated by the rotation of the second motor satisfies one of:
f.sub.M1/f.sub.M2<0.87;(condition 1)
0.9943<f.sub.M1/f.sub.M2<1.0057; and(condition 2)
1.14<f.sub.M1/f.sub.M2.(condition 3)
Description
BRIEF DESCRIPTION OF DRAWINGS
[0014] Embodiment(s) of the present disclosure will be described by reference to the following figures, wherein:
[0015]
[0016]
[0017]
[0018]
[0019]
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
[0026]
DESCRIPTION OF EMBODIMENTS
[0027]
[0028]
[0029] The position P1 of
[0030] For example, when a frequency f.sub.M1 of the sound at the position P1 and a frequency f.sub.M2 of the sound at the position P2 are relatively close to each other, a beat sound as exemplified in
[0031]
[0032]
[0033] A horizontal axis of
[0034]
[0035]
[0036] As exemplified in
[0037]
[0038] In addition,
[0039] Further,
[0040]
[0041]
[0042]
[0043] An average value of the degree of dissonance of the engagement primary sounds shown on the horizontal axis of
[0044] As described above with reference to
[0045] By the frequency ratio (f.sub.M1/f.sub.M2) satisfying one of the conditions 13 of Formula 2, it becomes possible to suppress the degree of dissonance (average value) to a low value of 0.2 or lower, and the degree of dissonance due to overlapping of the sound generated by the rotation of the first motor 11 (having the frequency of f.sub.M1) and the sound generated by the rotation of the second motor 12 (having the frequency of f.sub.M2) can be reduced.
[0046] For example, in the specific example configurations of
[0047] In
[0048] For example, when the noise of sounds generated at positions other than the positions P1 and P2 is to be reduced, a design item corresponding to the sound (for example, design items other than the tooth number Z.sub.DN1 and the tooth number Z.sub.DN2) may beset to a design value satisfying one of the conditions 13 of Formula 2.
[0049] In addition, for example, there may be cases where a torque fluctuation (torque ripple) generated by the rotations of the motors (the first motor 11 and the second motor 12) causes vibration and noise. For example, when a permanent magnet motor is used, a pulsation is generated corresponding to the lowest common multiple of a number of poles of the permanent magnet and a number of salient poles around which a coil is wound. When the vibration and noise due to the pulsation is prominent for the sonic perception, the number of poles of the permanent magnet and the number of salient poles of the coil may be set to suitable design values in consideration of the performance of the motor, to adjust the frequencies, and to thereby realize, for example, a design that satisfies one of the conditions 13 of Formula 2.
[0050] In addition, in place of or in addition to the design, control may be applied to satisfy the reduction conditions of dissonance (for example, one of the conditions 13 of Formula 2).
[0051]
[0052] When the rotational number difference is controlled and changed as shown in
[0053] In order to control the rotational number difference in a manner as shown in
[0054] As described above with reference to