The present subject matter relates generally to washing machine appliances and more particularly to methods for preventing oversuds conditions therein.
Washing machine appliances generally include a tub for containing wash fluid, e.g., water, detergent, and/or bleach. A basket is rotatably mounted within the tub and defines a wash chamber for receipt of articles for washing. During operation of such washing machine appliances, wash fluid is directed into the tub and onto articles within the wash chamber of the basket. The basket can rotate at various speeds to agitate articles within the wash chamber in the wash fluid, to wring wash fluid from articles within the wash chamber, etc.
During operation of certain washing machine appliances, a spin cycle is performed to wring wash fluid from the articles within the wash chamber. The spin cycle typically entails rotating the basket at a relatively high rate of speed for a period of time. Typically, and desirably, the tub is generally empty of wash fluid and suds (caused by interaction between water and detergent, etc.). In some cases, however, an oversuds condition can occur, when suds remain in the tub during the spin cycle. If an oversuds condition occurs, the suds can overflow from the washing machine appliance and potentially damage, for example, surrounding floor areas and/or nearby electrical conditions. Such overflowing may also damage components of the washing machine appliance due to the extra stress placed on the appliance to handle the increased suds.
Furthermore, such oversuds conditions may result in a wet load because the washing machine appliance is not able to spin up to the recommended speed. As such, at the end of the cycle the articles may be soapy due to the washing machine appliance being unable to fully rinse the load. In addition, oversuds conditions may increase cycle time due to the washing machine appliance trying to solve the extra suds by adding extra rinse steps. Moreover, oversuds conditions may cause excessive drained current given the efforts to move the washing machine appliance under sudsing conditions.
As such, attempts have been made to reduce the risk of oversuds conditions in washing machine appliances. For example, additional water has been added before spin cycles in attempts to reduce suds within the tub and basket. In other instances, the speed at which the basket rotates during the spin cycle has been reduced. Further, in certain instances, the spin cycle ramp up period has been lengthened and/or reductions in recirculation have been made. However, these attempts have not suitably reduced the risk of oversuds conditions occurring and are often reactive rather than preventative.
Accordingly, improved washing machine appliances and methods for preventing oversuds conditions in washing machine appliances are desired.
Aspects and advantages of the invention will be set forth in part in the following description, or may be obvious from the description, or may be learned through practice of the invention.
In one aspect, the present disclosure is directed to a method for preventing an oversuds condition in a washing machine appliance. The washing machine appliance includes a tub and a basket rotatably mounted within the tub. The basket defines a chamber for receipt of articles for washing. The method includes obtaining, via a controller, one or more detergent parameters from one or more previous wash cycles of the washing machine appliance. Further, the method includes analyzing, via the controller, the one or more detergent parameters to predict an amount of suds that will be generated in a future wash cycle of the washing machine appliance. Moreover, the method includes automatically adjusting, via the controller, at least one operating parameter for the future wash cycle based on the predicted amount of suds to prevent the amount of suds from exceeding a suds threshold.
In another aspect, the present disclosure is directed to a washing machine appliance. The washing machine appliance includes a tub and a basket rotatably mounted within the tub. The basket defines a chamber for receipt of articles for washing. The washing machine appliance also includes a valve, a spout configured for directing fluid from the valve into the tub, a dispenser configured for dispensing detergent into the tub, and a motor in mechanical communication with the basket. Thus, the motor is configured for selectively rotating the basket within the tub. The washing machine appliance also includes a controller configured for controlling the washing machine appliance. In particular, the controller is configured to perform a plurality of operations, but not limited to obtaining one or more detergent parameters from one or more previous wash cycles of the washing machine appliance, analyzing the one or more detergent parameters to predict an amount of suds that will be generated in a future wash cycle of the washing machine appliance, and automatically adjusting at least one operating parameter for the future wash cycle based on the predicted amount of suds to prevent the amount of suds from exceeding a suds threshold.
These and other features, aspects and advantages of the present invention will become better understood with reference to the following description and appended claims. The accompanying drawings, which are incorporated in and constitute a part of this specification, illustrate embodiments of the invention and, together with the description, serve to explain the principles of the invention.
A full and enabling disclosure of the present invention, including the best mode thereof, directed to one of ordinary skill in the art, is set forth in the specification, which makes reference to the appended figures.
Reference now will be made in detail to embodiments of the invention, one or more examples of which are illustrated in the drawings. Each example is provided by way of explanation of the invention, not limitation of the invention. In fact, it will be apparent to those skilled in the art that various modifications and variations can be made in the present invention without departing from the scope or spirit of the invention. For instance, features illustrated or described as part of one embodiment can be used with another embodiment to yield a still further embodiment. Thus, it is intended that the present invention covers such modifications and variations as come within the scope of the appended claims and their equivalents.
Referring now to the drawings,
Referring now to
A spout 72 is configured for directing a flow of fluid into the tub 64. In particular, the spout 72 may be positioned at or adjacent to the top portion 82 of the basket 70. The spout 72 may be in fluid communication with a water supply (not shown) in order to direct fluid (e.g., liquid water) into the tub 64 and/or onto articles within the chamber 73 of the basket 70. A valve 74 regulates the flow of fluid through the spout 72. For example, the valve 74 can selectively adjust to a closed position in order to terminate or obstruct the flow of fluid through the spout 72. A pump assembly 90 (shown schematically in
Still referring to
Operation of the washing machine appliance 50 is controlled by a processing device or controller 100, that is operatively coupled to the user interface input located on washing machine backsplash 56 (shown in
The controller 100 may include a memory and microprocessor, such as a general or special purpose microprocessor operable to execute programming instructions or micro-control code associated with a cleaning cycle. The memory may represent random access memory such as DRAM, or read only memory such as ROM or FLASH. In one embodiment, the processor executes programming instructions stored in memory. The memory may be a separate component from the processor or may be included onboard within the processor. Alternatively, controller 100 may be constructed without using a microprocessor, e.g., using a combination of discrete analog and/or digital logic circuitry (such as switches, amplifiers, integrators, comparators, flip-flops, AND gates, and the like) to perform control functionality instead of relying upon software. Control panel 58 and other components of washing machine appliance 50 may be in communication with controller 100 via one or more signal lines or shared communication busses.
In an illustrative embodiment, laundry items are loaded into the chamber 73 of the basket 70, and washing operation is initiated through operator manipulation of control input selectors 60. The tub 64 is filled with water and mixed with detergent to form a wash fluid. The valve 74 can be opened to initiate a flow of water into the tub 64 via the spout 72, and the tub 64 can be filled to the appropriate level for the amount of articles being washed. In certain embodiments, the detergent may be poured directly into the basket 70 via a user. In alternative embodiments, the washing machine appliance 50 may be further equipped with a detergent dispenser 102 (
After the agitation phase of the wash cycle is completed, the tub 64 is drained. Laundry articles can then be rinsed by again adding fluid to the tub 64, depending on the particulars of the cleaning cycle selected by a user, the agitation element 92 may again provide agitation within the basket 70. One or more spin cycles may also be used. In particular, a spin cycle may be applied after the wash cycle and/or after the rinse cycle in order to wring wash fluid from the articles being washed. During a spin cycle, the basket 70 is rotated at relatively high speeds.
While described in the context of a specific embodiment of the washing machine appliance 50, using the teachings disclosed herein it will be understood that the washing machine appliance 50 is provided by way of example only. Other washing machine appliances having different configurations (such as horizontal-axis washing machine appliances), different appearances, and/or different features may also be utilized with the present subject matter as well.
Referring still to
Further, a deflector 130 may be disposed within and mounted to the tub 64, such as to a sidewall 68 and/or tub bottom 66 thereof. The deflector 130 generally extends inwardly from the sidewall 68 and the tub bottom 66 between the tub 64 and the basket 70, and deflects and redirects water therein. The inner opening 120 may be defined adjacent to the deflector 130, such that the deflector 130 redirects water from the inner opening 120.
As discussed, improved methods and apparatus for preventing oversuds conditions are desired in the art. The present disclosure is thus further directed to methods for preventing oversuds conditions in washing machine appliances. Such methods may advantageously reduce leakages and other issues caused by oversuds conditions by efficiently preventing such conditions. As used herein, an oversuds condition generally refers to a condition wherein excess fluids, such as wash fluids and suds, are present in a tub. Accordingly, as shown in
As shown at (202), the method 200 includes obtaining, via the controller 100, one or more detergent parameters from one or more previous wash cycles of the washing machine appliance 50. For example, in an embodiment, the detergent parameter(s) described herein may include an amount of detergent, a type of detergent, suds generation, a number of oversuds events, and/or a fluid temperature for the one or more previous wash cycles. The detergent parameter(s) may be determined using any suitable methods. For example, in an embodiment, the method 200 may include determining the suds generation from the previous wash cycle(s) using an existing algorithm of the washing machine appliance. Further, in an embodiment, the method 200 may include determining the fluid temperature using at least one thermistor 104.
As shown at (204), the method 200 includes analyzing, via the controller 100, the one or more detergent parameters to predict an amount of suds that will be generated in a future wash cycle of the washing machine appliance 50. For example, in an embodiment, the controller 100 may analyze the detergent parameter(s) using at least one of an algorithm, one or more look-up tables, or a machine learning process.
As shown at (206), the method 200 includes automatically adjusting, via the controller 100, at least one operating parameter for the future wash cycle based on the predicted amount of suds to prevent the amount of suds from exceeding a suds threshold. For example, in an embodiment, the operating parameter(s) may include at least one of an amount of detergent, a target temperature, or a target water level. As such, in an embodiment, the controller 100 may automatically adjust the operating parameter(s) for the future wash cycle based on the predicted amount of suds and an amount of detergent selected for the future wash cycle. More specifically, in an embodiment, the controller 100 may determine the amount of suds that will be generated in the future wash cycle of the washing machine appliance based on the suds generation, the fluid temperature, and the amount of detergent selected for the future wash cycle.
Referring now to
In still further embodiments, the controller 100 may continuously tune the operating parameter(s) for the future wash cycle based on the one or more detergent parameters from a plurality of previous wash cycles.
Referring now to
Thus, as shown at 322 and 324, the dispenser 102 dispenses the appropriate amount of detergent and continues the wash cycle. The cycle ends at 326.
This written description uses examples to disclose the invention, including the best mode, and also to enable any person skilled in the art to practice the invention, including making and using any devices or systems and performing any incorporated methods. The patentable scope of the invention is defined by the claims, and may include other examples that occur to those skilled in the art. Such other examples are intended to be within the scope of the claims if they include structural elements that do not differ from the literal language of the claims, or if they include equivalent structural elements with insubstantial differences from the literal languages of the claims.