DISHWASHER DIVERTER VALVE DRIVE
20230275490 · 2023-08-31
Assignee
Inventors
- Corey M. PRUESS (Racine, WI, US)
- John STEWART (Germantown, WI, US)
- Mason ELKHOURY (Bloomingdale, IL, US)
Cpc classification
H02K7/10
ELECTRICITY
H02K7/1185
ELECTRICITY
H02K5/04
ELECTRICITY
F16K31/043
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H02K7/14
ELECTRICITY
International classification
H02K7/10
ELECTRICITY
F16K31/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An AC motor, and method of operation, including a synchronous motor with a magnetic rotor, and a stator positioned at a fixed distance from the magnetic rotor. A no-back mechanism is configured to oscillate when the synchronous motor is rotating in a desired direction, and the no-back component is configured to move to a stopping position when the synchronous motor is rotating in an undesired direction.
Claims
1. An AC motor comprising: a synchronous motor; a magnetic rotor; a no-back component, wherein the no-back component is configured to oscillate when the synchronous motor is rotating in a desired direction, and wherein the no-back component is configured to move to a stopping position when the synchronous motor is rotating in an undesired direction; and a stator positioned at a fixed distance from the magnetic rotor.
2. The AC motor of claim 1, further comprising: a motor cup at least partially enclosing the rotor and stator, wherein the no-back component is connected to a surface of the motor cup.
3. The AC motor of claim 2, wherein the no-back component includes an attachment element connected to a connection point on or in the surface of the motor cup.
4. The AC motor of claim 1, further comprising: a motor cup comprising a plurality of apertures, wherein the no-back component is attached in one selected aperture of the plurality of apertures.
5. The AC motor of claim 4, wherein the plurality of apertures is disposed about a rotor shaft axis, and each of the plurality of apertures is configured to fix the no-back element at a different angle relative to the rotor and/or stator.
6. The AC motor of claim 1, wherein the rotor comprises a contact component, and the no-back component catches on the contact component when rotating in the undesired direction.
7. The AC motor of claim 6, wherein the contact component contacts a contoured inner surface of the no-back component in the desired direction and causes an oscillating movement of the no-back component in the desired direction.
8. The AC motor of claim 7, wherein the contact component is fixed to a rotor shaft.
9. The AC motor of claim 7, wherein an outer surface of the no-back component contacts a stationary portion of the synchronous motor on opposing sides to control the oscillating movement.
10. The AC motor of claim 9, wherein the outer surface of the no-back component includes at least one extension that contacts a motor housing to control the oscillating movement.
11. An AC synchronous motor, comprising: a housing comprising a motor cup; a magnetic rotor within the motor cup; a stator within the motor cup and positioned at a fixed distance from the magnetic rotor; and a no-back component connected between the motor cup and the rotor, wherein the no-back component is configured to oscillate when the rotor is rotating in a desired direction, and wherein the no-back component is configured to rotate to a stopping position when the rotor is rotating in an undesired direction.
12. The AC motor of claim 11, wherein the no-back component is connected between an end of the rotor and a surface of the motor cup.
13. The AC motor of claim 12, wherein the no-back component includes an attachment element engaged in an aperture of the surface of the motor cup.
14. The AC motor of claim 11, wherein a plurality of apertures are disposed in the motor cup about a rotor shaft axis, and each of the plurality of apertures is configured to fix the no-back element at a different angle relative to the rotor and/or stator.
15. The AC motor of claim 11, wherein the rotor comprises a contact component disposed on a rotor shaft, and the no-back component catches on a first surface of the contact component when rotating in the undesired direction.
16. The AC motor of claim 15, wherein a second surface of the contact component contacts a contoured inner surface of the no-back component in the desired direction to oscillate the no-back component when the rotor rotates in the desired direction.
17. The AC motor of claim 16, wherein the contact component is fixed to a rotor shaft, and includes a catch surface extending outward from the rotor shaft.
18. The AC motor of claim 16, wherein an outer surface of the no-back component contacts a stationary portion of the motor cup on an opposing sides to limit an oscillating movement.
19. A method of operating an AC synchronous motor, the method comprising: rotating a rotor with respect to a stator within a motor cup in a first and desired direction; catching the rotor with a no-back component connected between the motor cup and the rotor when the rotor is rotating in a second and undesired direction.
20. The method of claim 19, further comprising: oscillating the no-back component when the rotor is rotating in the first and desired direction; and rotating the no-back component to a stopping position when the rotor is rotating in the second and undesired direction.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0018]
[0019]
[0020]
[0021]
[0022]
DETAILED DESCRIPTION OF THE INVENTION
[0023] The present invention provides a motor, such as for dishwasher diverter valve for a dishwasher.
[0024]
[0025] The rotor assembly 40 is preferably symmetrical with equally spaced north and south poles. The stator 30 is preferably made of a ferrous material positioned at a fixed distance from the rotor assembly 40. Contrary to the rotor assembly 40, the stator material is not symmetrical. This asymmetry is needed to get the rotor 40 to start spinning. This asymmetry can also create “dead spots” where there is very little rotational force present when alternating current is applied to the coil of the motor 20.
[0026] Application of electrical power causes the rotor 40 to rotate in the desired direction to rotate shaft 42 and actuate the diverter valve (or other component as needed). In order to prevent the motor 20 from rotating in the opposite direction, a no-back mechanism is added to the motor assembly 25. The no-back-mechanism acts as a stop in the opposite, undesired rotation direction, and desirably includes a pair of elements and/or surfaces that make contact to stop the rotor from the second, undesired direction. In embodiments of this invention, the elements/surfaces do not make a stopping contact with each other in the desired direction due to a movement (e.g., oscillation) of the no-back mechanism, such as rotation about the motor cup connection element 55 caused by a follower structure on a cam surface within the no-back mechanism.
[0027]
[0028] The no-back mechanism 50 shown in
[0029] Upon rotation in the undesired, reverse direction, a catch surface 56 of the no-back component 52 catches on a corresponding surface 62 of the contact element 60 to halt backward rotation. In the desired rotation direction, a second surface 64 of the contact element 60 contacts and follows the internal cam surface 54 of the no-back component 52. Changes in internal cam surface 54, such as raised areas, moves the no-back component 52 back and forth in an oscillating movement to allow the contact element 60 to pass around the no-back component 52 in the desired rotation direction. The outer surface of the no-back component 52 can include extensions 68 to limit the oscillation movement by contacting surfaces within the motor cup 22, such as side walls in recess 65.
[0030]
[0031] The invention illustratively disclosed herein suitably may be practiced in the absence of any element, part, step, component, or ingredient which is not specifically disclosed herein.
[0032] While in the foregoing detailed description this invention has been described in relation to certain preferred embodiments thereof, and many details have been set forth for purposes of illustration, it will be apparent to those skilled in the art that the invention is susceptible to additional embodiments and that certain of the details described herein can be varied considerably without departing from the basic principles of the invention.