DISHWASHER, METHOD AND COMPUTER PROGRAM PRODUCT
20240023785 · 2024-01-25
Inventors
- Stephan Lutz (Zusamaltheim, DE)
- Stefan Pollithy (Forheim, DE)
- Markus Wecker (Gundremmingen, DE)
- Igor Hoffmann (Dillingen, DE)
- Marco Kienle (Mödingen, DE)
Cpc classification
A47L15/4259
HUMAN NECESSITIES
A47L2501/26
HUMAN NECESSITIES
A47L2401/24
HUMAN NECESSITIES
A47L15/0049
HUMAN NECESSITIES
International classification
Abstract
A dishwasher, in particular a household dishwasher, includes a dishwasher cavity, a spray apparatus for dispensing washing liquor, and a drive facility including an electric motor designed to actively drive the spray apparatus so as to apply washing liquor to an item to be washed arranged in the dishwasher cavity. The drive facility includes a detection unit for detecting a motor rotational speed of the electric motor. A control apparatus determines a blockage of the spray apparatus in dependence upon the detected motor rotational speed.
Claims
1-15. (canceled)
16. A dishwasher, comprising: a dishwasher cavity; a spray apparatus for dispensing washing liquor; a drive facility including an electric motor designed to actively drive the spray apparatus so as to apply washing liquor to an item to be washed arranged in the dishwasher cavity, said drive facility including a detection unit for detecting a motor rotational speed of the electric motor; and a control apparatus configured to determine a blockage of the spray apparatus in dependence upon the detected motor rotational speed.
17. The dishwasher of claim 16, constructed in a form of a household dishwasher.
18. The dishwasher of claim 16, further comprising an overload protection arranged between the electric motor and the spray apparatus and configured to move in the presence of blockage of the spray apparatus automatically from a coupling state, in which force is transferred between the electric motor and the spray apparatus, into a decoupling state, in which a transfer of force between the electric motor and the spray apparatus is interrupted.
19. The dishwasher of claim 18, wherein the drive facility is arranged outside the dishwasher cavity and includes an output shaft connected to the electric motor to transfer a torque from the electric motor to the spray apparatus, said overload protection being arranged between the output shaft and the spray apparatus, wherein an angle of rotation of the output shaft and an angle of rotation of the spray apparatus are in a predetermined relationship with one another when the overload protection is in the coupling state.
20. The dishwasher of claim 16, wherein the control apparatus is configured to determine blockage of the spray apparatus in dependence upon a comparison between a predetermined target rotational speed and the detected motor rotational speed.
21. The dishwasher of claim 16, wherein the control apparatus is configured to determine blockage of the spray apparatus in dependence upon a deviation of the detected motor rotational speed from a target rotational speed by more than a predetermined threshold value.
22. The dishwasher of claim 16, wherein the control apparatus is configured to output an alert signal to a user of the dishwasher when blockage of the spray apparatus is determined.
23. The dishwasher of claim 16, wherein the control apparatus is configured to determine a blockage position of the spray apparatus.
24. The dishwasher of claim 23, wherein the control apparatus is configured to output an alert signal to a user of the dishwasher in dependence upon the determined blockage position.
25. The dishwasher of claim 16, further comprising a detection unit for detecting a movement of the spray apparatus, said control apparatus being configured to determine blockage of the spray apparatus in dependence upon the detected motor rotational speed and detection of the movement of the spray apparatus.
26. The dishwasher of claim 16, wherein the control apparatus is configured to reverse a direction of rotation of the electric motor when the spray apparatus is blocked.
27. The dishwasher of claim 16, wherein the control apparatus is configured to determine an angular range in which the spray apparatus is able to freely rotate and to actuate the electric motor in such a manner that the spray apparatus only rotates in the determined angular range.
28. The dishwasher of claim 16, wherein the control apparatus is configured to set a torque of the electric motor.
29. The dishwasher of claim 16, further comprising a door, said control apparatus being configured to actuate the electric motor in such a manner that the spray apparatus performs at least one complete rotation in the dishwasher cavity, when the door has been closed.
30. A method for operating a dishwasher which includes a spray apparatus and a drive facility operably connected to the spray apparatus, said method comprising: actuating an electric motor of the drive facility for actively driving the spray apparatus so as to apply washing liquor to an item to be washed arranged in a dishwasher cavity of the dishwasher; detecting a motor rotational speed of the electric motor of the drive facility; and determining a blockage of the spray apparatus in dependence upon the detected motor rotational speed.
31. The method of claim 30 for operating a household dishwasher.
32. A computer program product embodied on a non-transitory computer readable medium comprising commands which, when executed by a computer, cause the computer to perform a method as set forth in claim 30.
Description
[0061] Further advantageous embodiments and aspects of the invention are the subject matter of the subordinate claims and of the exemplary embodiments of the invention described below. Furthermore, the invention is explained in detail with the aid of preferred embodiments with reference to the attached figures.
[0062]
[0063]
[0064]
[0065]
[0066] In the figures, identical or functionally identically elements are provided with the same reference characters, insofar as not otherwise stated.
[0067]
[0068] The door 3 is illustrated in its open position in
[0069] Moreover, the household dishwasher 1 has at least one receptacle 12 to 14 for items to be washed. It is preferred that multiple, for example three, receptacles 12 to 14 for items to be washed are provided, wherein the receptacle 12 for items to be washed can be a lower receptacle for items to be washed or a bottom basket, the receptacle 13 for items to be washed can be a receptacle for items to be washed or a top basket and the receptacle 14 for items to be washed can be a cutlery drawer. As
[0070] A spray apparatus 20 is arranged on the base 7. Said spray apparatus is a spray arm. The spray arm 20 can have a satellite spray arm (not illustrated). The spray arm 20 is configured so as to discharge washing liquor onto the items to be washed that are arranged in the receptacle 12 to 14 for items to be washed. The spray arm 20 is rotatably mounted, wherein a torque for rotating the spray arm 20 is provided by a drive facility 15. The drive facility 15 is preferably arranged outside the dishwasher cavity 2, in this example therefore below the base 7. The drive unit 15 comprises in particular an electric motor 16 (see
[0071] Moreover, a control apparatus 25 is arranged on the door 3 of the household dishwasher 1. The control apparatus 25 is configured, for example, so as to perform a washing program from a number of washing programs. In particular, the control apparatus 25 is configured so as, in dependence upon the detected motor rotational speed 21, to determine a blockage of the spray arm 20. For example, the spray arm 20 is coupled to the electric motor 16 of the drive facility 15 without an overload protection 19 (see
[0072]
[0073]
[0074] The output shaft 17 penetrates the base 7 of the dishwasher cavity 2 and protrudes into said dishwasher cavity. In this case, the output shaft 17 is sealed, for example, by a shaft sealing ring or the like, so that washing liquor is prevented from escaping. In particular, the output shaft 17 is coupled to a coupling unit 18 that is arranged in the dishwasher cavity 2. The coupling unit 18 comprises in this example an overload protection 19. In the case of a blockage of the spray apparatus 20, the overload protection 18 automatically moves from a coupling state, in which force is transferred between the electric motor 16 and the spray apparatus 20, into a decoupling state in which the transfer of force between the electric motor 16 and the spray apparatus 20 is interrupted. In the coupling state, the overload protection 18 transfers a force from the output shaft 17 to a drive shaft 20A of the spray apparatus 20, as indicated by the arrow.
[0075] The spray apparatus 20 is, for example, connected to the drive shaft 20A in a rigid manner and accordingly rotates with said drive shaft. The overload protection is preferably designed in such a manner that the coupling state can be produced in precisely a specific relative position of rotation between the output shaft 17 and the drive shaft 20A. Consequently, in the coupling state, a specific position of rotation of the output shaft 17 corresponds to a specific position of rotation of the drive shaft 20A and thus of the spray apparatus 20.
[0076] In embodiments (not illustrated), the drive facility 15 comprises additionally a sensor for detecting a position of rotation of the output shaft 17. The sensor is designed, for example, as a magnetic or optical rotary encoder. It is possible in the coupling state to conclude the position of rotation of the spray apparatus 20 from the detected position of rotation of the output shaft 17. Consequently, the position of the blockage of the spray apparatus 20 is known. On the basis of the known blockage position, it is possible to undertake suitable measures. For example, when an alert is output visually to the user of the dishwasher 1, the blockage position can be represented graphically, so that the user can check the blockage in a simple manner and where appropriate remove it.
[0077]
[0078] The upper diagram shows the course of the angle of rotation 21 of the output shaft 17. As explained above, the output shaft 17 rotates at an essentially constant angular velocity. Changes in the motor rotational speed SIG have a proportional effect on the angular velocity of the output shaft 17.
[0079] The lower diagram shows the detected motor rotational speed SIG. A closed-loop control adjusts the motor rotational speed SIG to a target value RS for the motor rotational speed SIG. Fluctuations in the motor rotational speed SIG are visible at two points in time t1, t2. These fluctuations occur in the two illustrated rotations of the output shaft 17 respectively in the case of the same angle of rotation of the output shaft 17. The fluctuations are triggered by a coupling/decoupling of the overload protection 19 if the spray apparatus 20 is blocked (see
[0080] In order to determine in the case of a fluctuation in the rotational speed whether there is a blockage of the spray apparatus 20, two threshold values th1, th2 are illustrated. If one of these threshold values th1, th2 or both threshold values th1, th2 is exceeded, it is possible to conclude a blockage of the spray apparatus 20. The control apparatus 25 (see
[0081] Additionally and/or alternatively to comparing the motor rotational speed SIG with threshold values th1, th2, which relate to a target value RS, the control apparatus 25 can be configured so as to determine the local maxima/minima of the motor rotational speed SIG by analysis of the curve (not illustrated). Here, for example, if the first temporal derivative of the motor speed SIG is considered, there would be a zero crossing at each of the local maxima/minima, which can be detected.
[0082]
[0083] In an exemplary embodiment, the method additionally comprises the steps described below. As soon as a blockage of the spray apparatus 20 has been determined, for example as described with reference to
[0084] Although the present invention has been described with reference to exemplary embodiments, it can be modified in numerous ways.
REFERENCE CHARACTERS USED
[0085] 1 Dishwasher [0086] 2 Dishwasher cavity [0087] 3 Door [0088] 4 Dishwasher interior [0089] 5 Pivot axis [0090] 6 Loading opening [0091] 7 Base [0092] 8 Ceiling [0093] 9 Rear wall [0094] 10 Side wall [0095] 11 Side wall [0096] 12 Receptacle for items to be washed [0097] 13 Receptacle for items to be washed [0098] 14 Receptacle for items to be washed [0099] 15 Drive facility [0100] 16 Electric motor [0101] 16A Detection unit [0102] 17 Output shaft [0103] 18 Coupling unit [0104] 19 Overload protection [0105] 20 Spray apparatus [0106] 20A Axis [0107] 21 Angle of rotation [0108] 25 Control apparatus [0109] Angle of rotation [0110] A Extraction direction [0111] E Insertion direction [0112] RPM Rotational speed [0113] RS Target rotational speed [0114] S1 Method step [0115] S2 Method step [0116] S3 Method step [0117] SIG Motor rotational speed [0118] t Time axis [0119] t1 Point in time [0120] t2 Point in time [0121] th1 Threshold value [0122] th2 Threshold value