Redundant modular pivot angle motor
09929622 ยท 2018-03-27
Assignee
Inventors
- Georg Ried (Scheidegg, DE)
- Albert Petretti (Lindenberg, DE)
- Philipp Kegel (Heimenkirch, DE)
- Christian Schilling (Maierhoefen, DE)
- Michael Koros (Lindenberg, DE)
Cpc classification
F16D9/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H02K11/21
ELECTRICITY
F16D7/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2300/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
H02K11/00
ELECTRICITY
Abstract
This present disclosure relates to a motor arrangement for controlling pilot valves having at least three motors, having at least one stator each and at least one rotor each, wherein the motors are provided at a common rotating shaft, with each motor being coupled to the rotating shaft via at least one respective mechanical coupling.
Claims
1. A motor arrangement for controlling pilot valves, comprising at least three motors, wherein the at least three motors comprise at least one stator each and at least one rotor each, and wherein the motors couple to a common rotating shaft at the shaft via at least one respective mechanical coupling, wherein the coupling comprises at least one outer coupling part, at least one inner coupling part and at least one yoke spring, with the yoke spring coupling the outer coupling part and the inner coupling part to one another in normal operation of the corresponding motor and decoupling them from one another in improper operation.
2. The motor arrangement in accordance with claim 1, wherein at least one respective electrical position sensor is provided at each motor.
3. The motor arrangement in accordance with claim 1, wherein the rotor is coupled to the outer coupling part by means of pins and by means of at least one ring.
4. The motor arrangement in accordance with claim 1, wherein two couplings are provided between at least two motors.
5. The motor arrangement in accordance with claim 1, wherein separating disks are provided between at least two couplings.
6. The motor arrangement in accordance with claim 1, wherein couplings which are the same and/or motors which are the same are provided; or in that couplings which are the same and/or motors which are the same are provided offset from one another at a common rotating shaft.
7. The motor arrangement in accordance with claim 2, wherein position sensors which are the same are provided; and/or in that the position sensors are provided within a housing of the motor arrangement; and/or in that the position sensors are coupled to the outer coupling part; and/or in that the position sensors are differential transformers.
8. The motor arrangement in accordance with claim 1, wherein the rotating shaft is supported via dual bearings.
9. A motor arrangement for controlling pilot valves, comprising: at least three motors, wherein the at least three motors comprise at least one stator each and at least one rotor each, and wherein the motors couple to a common rotating shaft at the shaft via at least one respective mechanical coupling, the coupling having two exterior cylindrical surfaces, one smaller than the other and each having different, but parallel, central axes, wherein the two exterior cylindrical surfaces are releasably connected to one another by a yoke spring.
10. The motor arrangement in accordance with claim 9, wherein at least one position sensor couples the at least one respective mechanical coupling.
11. The motor arrangement in accordance with claim 9, wherein the motors coupled to the shaft with a mechanical coupling are spaced apart from one another in an axial direction, the motors and at least one mechanical coupling extending radially outwardly away from the shaft.
12. The motor arrangement in accordance with claim 9, wherein the smaller exterior cylindrical surface connects to the motor, and the other exterior cylindrical surface connects to the shaft.
13. The motor arrangement in accordance with claim 9, wherein at a threshold the yoke spring yields and allows relative rotary movement between the two exterior cylindrical surfaces.
14. The motor arrangement in accordance with claim 9, wherein the mechanical coupling comprises separate couplings that connect the rotors to the rotating shaft.
15. The motor arrangement in accordance with claim 9, wherein the smaller exterior cylindrical surface comprises a fork section that at least partly supports the other exterior cylindrical surface.
16. The motor arrangement in accordance with claim 9, wherein the two exterior cylindrical surfaces further comprise abutments to provide resistance for relative movement between the two surfaces.
17. The motor arrangement in accordance with claim 10, wherein the pilot valve is controlled by the at least three motors in parallel, and wherein the pilot valve is coupled to the motors via the respective couplings.
18. The motor arrangement in accordance with claim 17, wherein the motors are decoupled from the pilot valve individually depending on the operating condition.
Description
BRIEF DESCRIPTION OF THE FIGURES
(1)
(2)
(3)
(4)
DETAILED DESCRIPTION
(5)
(6) The motors 1 and the couplings 5 can be substantially components of hollow cylindrical shape or of annular shape. In this respect, a respective leadthrough for the rotating shaft 10 can be provided in their center. The rotating shaft 10 can thus be the central component of the arrangement about which further components of the arrangement are grouped.
(7) Separating disks 11, which effect a mechanical separation of the couplings 5, can furthermore be provided between the couplings 5. The separating disks 11 can in this respect be in the form of perforated disks or can be of hollow cylindrical shape. In the shown embodiment of
(8) Each stator 2 of the motors 1 has at least one contact surface via which it is in contact with the housing of the motor arrangement via a radially outwardly disposed region of the stator 2. A good heat exchange between the components is hereby made possible, whereby the motor temperature can be kept in a desired range during operation. As can be seen from
(9)
(10) Each of the rotors 3 is connected to the rotating shaft 10 via a separate coupling 5. In the case of a disturbance or of a blocking between a rotor 3 and its stator 2, the coupling 5 allows a further movement or rotation of the rotating shaft 10.
(11) As soon as the torque which is transmitted between the outer coupling part 6 and the inner coupling part 7 exceeds a normal operating value, or threshold, the yoke spring 8 yields and allows a relative rotary movement between the outer coupling part 6 and the inner coupling part 7.
(12) The yoke spring 8 can in this respect be shaped as a C-shaped component which allows a releasable connection of the outer coupling part 6 and of the inner coupling part 7 by means of its end sections. A middle arc section of the yoke spring 8 can in this respect exert a restoring and fixing force on the outer coupling part 6 and on the inner coupling part 7 in accordance with its elasticity, whereby both components are coupled to one another within certain thresholds.
(13) In one example, the outer coupling part 6 and the inner coupling part 7 may in substantial parts comprise at least one annular structure each. The outer coupling part 6 can furthermore comprise a fork section in which the inner coupling part 7 is at least partly supportable. Furthermore, abutments at the outer coupling part 6 and at the inner coupling part 7 may, for example, limit a relative movement between the outer coupling part 6 and the inner coupling part 7. The outer coupling part 6 can furthermore comprise a connection section via which the outer coupling part 6 can be coupled to a position sensor 4.
(14)
(15) The position sensor 4 is in this respect coupled to the outer coupling part 6 via the connection section. In one example, the position sensor 4 can detect a restricted angular range of the motor movement of the motor 1. Alternatively or additionally, a position sensor 4 may detect complete revolutions of the motor 1.
(16)
(17) The pilot valve 20 shown is a 4/3 way valve in the embodiment of
(18)