The present subject matter relates generally to washing machine appliances, and more particularly to washing machine appliances operable to perform a drying cycle, such as a one-step wash and dry cycle in a single, continuous cycle of a single appliance.
Washing machine appliances generally include a wash tub for containing water or wash fluid (e.g., water, detergent, bleach, or other wash additives). A basket is rotatably mounted within the wash tub and defines a wash chamber for receipt of articles for washing. During normal operation of such washing machine appliances, the wash fluid is directed into the wash tub and onto articles within the wash chamber of the basket. The basket or an agitation element can rotate at various speeds to agitate articles within the wash chamber, to wring wash fluid from articles within the wash chamber, etc.
Some existing washing machine appliances, such as horizontal axis washing machines, are provided with one or more ventilation features. Such features may allow a washing machine appliance to exchange air between the wash tub and the ambient environment. The exchange of air may be useful to dry the wash tub, wash basket, and/or articles therein.
Although such ventilation features may by used to dry articles in a washing machine appliance, the drying process may take an excessively long time, may not dry the articles to the extent desired, and/or a user may not be aware of when the drying process is complete. For example, existing drying cycles for washing machine appliances are commonly based on a fixed predetermined run time for the drying cycle, which may result in under drying some loads or may take longer than necessary for other loads.
As a result, it is desired in the art to provide flexible and effective drying cycles in a washing machine appliance.
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 exemplary aspect of the present disclosure, a method of drying a load of articles in a wash basket of a washing machine appliance is provided. The method includes drying the load of articles in the washing machine appliance by rotating the wash basket within the washing machine appliance. The method also includes monitoring a humidity within the washing machine appliance while rotating the wash basket and comparing the monitored humidity within the washing machine appliance to a humidity threshold. The method further includes terminating the method in response to the monitored humidity within the washing machine appliance less than or equal to the humidity threshold.
In another exemplary aspect of the present disclosure, a method of drying a load of articles in a wash basket of a washing machine appliance is provided. The method includes drying the load of articles in the washing machine appliance by rotating the wash basket within the washing machine appliance. The method also includes estimating a remaining moisture content of the load of articles. The method further includes terminating the drying in response to the estimated remaining moisture content of the load of articles less than or equal to a dry 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.
Repeat use of reference characters in the present specification and drawings is intended to represent the same or analogous features or elements of the present invention.
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.
In order to aid understanding of this disclosure, several terms are defined below. The defined terms are understood to have meanings commonly recognized by persons of ordinary skill in the arts relevant to the present invention. The terms “includes” and “including” are intended to be inclusive in a manner similar to the term “comprising.” Similarly, the term “or” is generally intended to be inclusive (i.e., “A or B” is intended to mean “A or B or both”). The terms “first,” “second,” and “third” may be used interchangeably to distinguish one element from another and are not intended to signify location or importance of the individual elements. Terms such as “inner” and “outer” refer to relative directions with respect to the interior and exterior of the washing machine appliance, and in particular the wash basket therein. For example, “inner” or “inward” refers to the direction towards the interior of the washing machine appliance. Terms such as “left,” “right,” “front,” “back,” “top,” or “bottom” are used with reference to the perspective of a user accessing the washing machine appliance. For example, a user stands in front of the washing machine appliance to open the door and reaches into the wash basket to access items therein. Furthermore, it should be appreciated that as used herein, terms of approximation, such as “approximately,” “substantially,” or “about,” refer to being within ten percent greater or less than the stated value. When used in the context of an angle or direction, such terms include within ten degrees greater or less than the stated angle or direction. For example, “generally vertical” includes directions within ten degrees of vertical in any direction, e.g., clockwise or counterclockwise.
Referring now to the figures,
Referring to
Wash basket 122 may define one or more agitator features that extend into wash chamber 124 to assist in agitation and cleaning articles disposed within wash chamber 124 during operation of washing machine appliance 100. For example, as illustrated in
Washing machine appliance 100 includes a drive assembly 128 which is coupled to wash tub 120 and is generally configured for rotating wash basket 122 during operation, e.g., such as during an agitation or spin cycle. More specifically, as best illustrated in
Referring generally to
In some embodiments, a window 146 in door 144 permits viewing of wash basket 122 when door 144 is in the closed position (e.g., during operation of washing machine appliance 100). Door 144 also includes a handle (not shown) that, for example, a user may pull when opening and closing door 144. Further, although door 144 is illustrated as mounted to front panel 140, it should be appreciated that door 144 may be mounted to another side of cabinet 102 or any other suitable support according to alternative embodiments.
Referring again to
Referring still to
As illustrated, a detergent drawer 172 may be slidably mounted within front panel 140. Detergent drawer 172 receives a wash additive (e.g., detergent, fabric softener, bleach, or any other suitable liquid or powder) and directs the fluid additive to wash chamber 124 during operation of washing machine appliance 100. According to the illustrated embodiment, detergent drawer 172 may also be fluidly coupled to spout 170 to facilitate the complete and accurate dispensing of wash additive.
In some embodiments, an optional bulk reservoir 174 may be disposed within cabinet 102. Bulk reservoir 174 may be configured for receipt of fluid additive for use during operation of washing machine appliance 100. Moreover, bulk reservoir 174 may be sized such that a volume of fluid additive sufficient for a plurality or multitude of wash cycles of washing machine appliance 100 (e.g., five, ten, twenty, fifty, or any other suitable number of wash cycles) may fill bulk reservoir 174. Thus, for example, a user can fill bulk reservoir 174 with fluid additive and operate washing machine appliance 100 for a plurality of wash cycles without refilling bulk reservoir 174 with fluid additive. A reservoir pump 176 may be configured for selective delivery of the fluid additive from bulk reservoir 174 to wash tub 120.
A control panel 180 including a plurality of input selectors 182 may be coupled to front panel 140. Control panel 180 and input selectors 182 collectively form a user interface input for operator selection of machine cycles and features. A display 184 of control panel 180 indicates selected features, operation mode, a countdown timer, and/or other items of interest to appliance users regarding operation.
Operation of washing machine appliance 100 is controlled by a processing device or a controller 186 that is operatively coupled to control panel 180 for user manipulation to select washing machine cycles and features. In response to user manipulation of control panel 180, controller 186 operates the various components of washing machine appliance 100 to execute selected machine cycles and features. Controller 186 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 methods described herein. 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 186 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 180 may be in communication with controller 186 via one or more signal lines or shared communication busses to provide signals to and/or receive signals from the controller 186.
In addition, the memory or memory devices of the controller 186 can store information and/or data accessible by the one or more processors, including instructions that can be executed by the one or more processors. It should be appreciated that the instructions can be software written in any suitable programming language or can be implemented in hardware. Additionally, or alternatively, the instructions can be executed logically and/or virtually using separate threads on one or more processors.
For example, controller 186 may be operable to execute programming instructions or micro-control code associated with an operating cycle of washing machine appliance 100. In this regard, the instructions may be software or any set of instructions that when executed by the processing device, cause the processing device to perform operations, such as running one or more software applications, displaying a user interface, receiving user input, processing user input, etc. Moreover, it should be noted that controller 186 as disclosed herein is capable of and may be operable to perform any methods, method steps, or portions of methods as disclosed herein. For example, in some embodiments, methods disclosed herein may be embodied in programming instructions stored in the memory and executed by controller 186.
The memory devices may also store data that can be retrieved, manipulated, created, or stored by the one or more processors or portions of controller 186. The data can include, for instance, data to facilitate performance of methods described herein. The data can be stored locally (e.g., on controller 186) in one or more databases and/or may be split up so that the data is stored in multiple locations. In addition, or alternatively, the one or more database(s) can be connected to controller 186 through any suitable network(s), such as through a high bandwidth local area network (LAN) or wide area network (WAN). In this regard, for example, controller 186 may further include a communication module or interface that may be used to communicate with one or more other component(s) of washing machine appliance 100, controller 186, an external appliance controller, or any other suitable device, e.g., via any suitable communication lines or network(s) and using any suitable communication protocol. The communication interface can include any suitable components for interfacing with one or more network(s), including for example, transmitters, receivers, ports, controllers, antennas, or other suitable components.
In exemplary embodiments, during operation of washing machine appliance 100, laundry items are loaded into wash basket 122 through opening 142, and a wash operation is initiated through operator manipulation of input selectors 182. For example, a wash cycle may be initiated such that wash tub 120 is filled with water, detergent, or other fluid additives (e.g., via detergent drawer 172 or bulk reservoir 174). One or more valves (not shown) can be controlled by washing machine appliance 100 to provide for filling wash basket 122 to the appropriate level for the amount of articles being washed or rinsed. By way of example, once wash basket 122 is properly filled with fluid, the contents of wash basket 122 can be agitated (e.g., with ribs 126) for an agitation phase of laundry items in wash basket 122. During the agitation phase, the basket 122 may be motivated about the axis of rotation AR at a set speed (e.g., first speed or tumble speed). As the basket 122 is rotated, articles within the basket 122 may be lifted and permitted to drop therein.
After the agitation phase of the washing operation is completed, wash tub 120 can be drained, e.g., by drain pump assembly 156. Laundry articles can then be rinsed (e.g., through a rinse cycle) by again adding fluid to wash tub 120, depending on the particulars of the cleaning cycle selected by a user. Ribs 126 may again provide agitation within wash basket 122. One or more spin cycles may also be used. In particular, a spin cycle may be applied after the wash cycle or after the rinse cycle in order to wring wash fluid from the articles being washed. During a spin cycle, basket 122 is rotated at relatively high speeds. For instance, basket 122 may be rotated at one set speed (e.g., second speed or pre-plaster speed) before being rotated at another set speed (e.g., third speed or plaster speed). As would be understood, the pre-plaster speed may be greater than the tumble speed and the plaster speed may be greater than the pre-plaster speed. Moreover, agitation or tumbling of articles may be reduced as basket 122 increases its rotational velocity such that the plaster speed maintains the articles at a generally fixed position relative to basket 122. After articles disposed in wash basket 122 are cleaned (or the washing operation otherwise ends), a user can remove the articles from wash basket 122 (e.g., by opening door 144 and reaching into wash basket 122 through opening 142).
During such operations, the gasket 200 may help to contain wash fluid within the cabinet 102, particularly within the tub 120. As generally shown in
It should be appreciated that the present subject matter is not limited to any particular style, model, or configuration of washing machine appliance. The exemplary embodiment depicted in
As illustrated in
Although a convective airflow may be facilitated, optional embodiments further include a fan or blower 198. Specifically, fan 198 may be provided in fluid communication with ventilation line 190 to motivate an active airflow therethrough. For instance, fan 198 may be mounted within ventilation line 190 to selectively rotate and draw air from wash tub 120, through ventilation inlet 194, and to ventilation outlet 196 (e.g., to output an airflow from tub 120 to the ambient environment).
A cabinet aperture 202 may be defined through front panel 140 as an inlet for ambient air to flow from outside of the cabinet 102 to the inside of the cabinet 102, e.g., to and through the tub 120. Notably, in the disclosed embodiments, air 1000 (e.g., an ambient airflow) may flow between tub 120 and the ambient environment through cabinet aperture 202 and/or vent line 190 even while door 144 remains closed.
A vent damper 210 may be provided to selectively control an airflow between tub 120 and, for example, the ambient environment. Generally, vent damper 210 is in communication with wash tub 120 and/or ventilation line 190 (i.e., in fluid communication with air path 192). In certain embodiments, vent damper 210 is enclosed, at least in part, within cabinet 102. Vent damper 210 may be selectively controlled or operated to limit or obstruct the flow of air from the ambient environment into the interior of the cabinet 102, such as to the wash tub 120, via the aperture 202 during certain operations, phases, or cycles. Thus, vent damper 210 may selectively limit airflow between tub 120 and the ambient environment, such as airflow from the ambient environment via the aperture 202.
The damper 210 may be positioned downstream of the aperture 202, e.g., between the aperture 202 and the wash tub 120 and/or between the aperture 202 and the gasket 200. Thus, opening the damper 210 may permit fluid communication, e.g., air flow, between internal components of the washing machine appliance 100, e.g., the wash tub 120 and/or the wash basket 122, and the ambient environment external to the cabinet 102. Thus, the damper 210 may be upstream of the internal components, e.g., wash basket 122, with respect to a flow of ambient air 1000 from the ambient environment external to the cabinet 102 through the washing machine appliance 100. As may be seen in
As mentioned above, the controller 186 may be in operative communication with various other components of the washing machine appliance 100. In particular, controller 186 is in operative communication with humidity sensor 208, fan 198 (when the fan 198 is provided), damper 210, and motor 130. Accordingly, controller 186 may receive signals from and rout signals to these various components. For instance, controller 186 may receive signals from humidity sensor 208 that are indicative of the humidity or relative humidity of the air measured by the humidity sensor 208. Such signals may be used to make decisions as to whether to activate motor 130 to rotate wash basket 122, e.g., to facilitate air flow through the wash tub 120. Controller 186 can receive the signals directly or indirectly from sensor 208. Moreover, controller 186 may send signals to motor 130, e.g., to rotate basket 122, to fan 198, e.g., to blow air within and/or through vent line 190, or controller 186 may send signals to damper 210 to open or close.
In some embodiments, e.g., as illustrated in
In some embodiments, e.g., as illustrated in
Additionally, in at least some embodiments, in particular those embodiments where the humidity sensor 208 is positioned away from the outlet 196, the humidity sensor 208 may be operable to measure the ambient humidity when ambient air is drawn into the vent line 190, e.g., in the reverse direction of the normal air flow path through the washing machine appliance 100. For example, in embodiments which include the fan 198, the fan 198 may be operable in two directions, e.g., may be a reversible fan, whereby the fan 198 may be operable to spin in a reverse direction in order to draw ambient air into the vent line 190 via the ventilation outlet 196, whereby the humidity sensor 208 may measure an ambient humidity when the fan 198 is operating in the reverse direction. In additional embodiments, such as but not limited to embodiments where there is no fan in the vent line 190, e.g., as illustrated in
In some embodiments, the washing machine appliance 100 may include a second humidity sensor. In such embodiments, the second humidity sensor may be positioned proximate to the damper 210, such as immediately upstream or immediately downstream of the damper 210, e.g., between the damper 210 and the gasket 200 or between the damper 210 and the aperture 202. In such embodiments, the first humidity sensor 208 may be used to measure the humidity within the washing machine appliance 100, and the second humidity sensor may be used to measure the ambient humidity.
As mentioned above, the flow of ambient air 1000 (e.g.,
The method 800 of drying a load of articles in a wash basket of a washing machine appliance may include a step 810 of drying the load of articles in the washing machine appliance by rotating the wash basket within the washing machine appliance. As described above, such rotation of the wash basket may promote air flow into, through, and/or within the wash tub and wash basket, thereby enhancing or accelerating the drying of the load of articles. For example, in at least some embodiments, the washing machine appliance may include a cabinet with the wash basket positioned within the cabinet, and the cabinet may include one or more vent apertures and/or a vent line. In such embodiments, the rotation of the wash basket may promote air flow and other fluid communication between the ambient environment and the wash basket, such as through the vent aperture(s) and/or vent line. Thus, rotating the wash basket within the washing machine appliance may permit the load of articles to tumble within the wash basket, increasing the exposure of each article to the flow of air into and through the wash basket, in addition to the rotation of the wash basket promoting the air flow, e.g., with or without a fan as described above.
Still referring to
The drying operation may be terminated based on the measured humidity, e.g., rather than simply based on a time limit. For example, in some embodiments, method 800 may include terminating the drying, such as ending the method entirely, in response to the monitored humidity within the washing machine appliance less than or equal to the humidity threshold.
In some embodiments, the drying operation may be terminated in response to the humidity less than or equal to the humidity threshold alone, whereas in other embodiments, the drying operation may be terminated in response to the humidity and one or more additional criteria, such as remaining moisture content. For example, some embodiments of method 800 may include determining a remaining moisture content of the load of articles, and terminating the method in such embodiments may be performed in response to the monitored humidity within the washing machine appliance less than or equal to the humidity threshold and in response to the determined remaining moisture content. For example, the method 800 may include, after the monitored humidity within the washing machine appliance is less than or equal to the humidity threshold, determining, e.g., estimating, the remaining moisture content in the load of articles and terminating the drying operation when the remaining moisture content is less than or equal to a dry threshold and the monitored humidity within the washing machine appliance is less than or equal to the humidity threshold.
Another exemplary method 900 of treating, e.g., drying or washing and drying, a load of articles in a washing machine appliance is illustrated in
Similar to method 800 described above, method 900 may also conclude the drying operation other than based on time, such as based on and in response to the remaining moisture content of the load of articles and/or humidity within the washing machine appliance. For example, method 900 may include a step 930 of terminating the drying in response to the estimated remaining moisture content of the load of articles less than or equal to a dry threshold.
In some embodiments, method 900 may include monitoring a humidity
within the washing machine appliance while rotating the wash basket and comparing the monitored humidity within the washing machine appliance to a humidity threshold. In such embodiments, estimating the remaining moisture content of the load of articles may be performed after, e.g., in response to, the measured humidity less than or equal to the humidity threshold.
Referring now generally to
In some embodiments, the washing machine appliance may include a cabinet with an aperture defined through the cabinet. A wash tub may be positioned within the cabinet, and the washing machine appliance may further include a door pivotably mounted to the cabinet at an opening in the cabinet. It is to be understood that the aperture and the opening are distinct elements of the washing machine appliance in such embodiments. The door may be mounted to the cabinet such that the door is pivotable between an open position and a closed position. In such embodiments, the wash basket may be rotatably mounted within the wash tub, and the door may permit access to the wash basket through the opening when in the open position and the door may enclose or generally enclose the wash basket within the cabinet when in the closed position, where the wash basket may be generally enclosed, for example, when fully enclosed and isolated from the ambient environment except for via the aperture and/or vent line. The aperture may be open to an ambient environment external to the cabinet when the door is in the closed position, e.g., whereby the washing machine appliance may provide ventilation and/or drying features while the door is closed, including one-step wash and dry cycles and other dry cycles during which the door may remain closed throughout. Thus, in at least some embodiments, drying the load of articles in the washing machine appliance by rotating the wash basket may include drawing a flow of ambient air through the aperture from the ambient environment into the wash basket, e.g., the flow of ambient air may be drawn by the rotation of the wash basket. Additionally, the flow of ambient air may also or instead be drawn by a fan, e.g., fan 198 described above.
For example, some embodiments may include, prior to drying the load of articles in the washing machine appliance by rotating the wash basket, opening a damper positioned within the cabinet of the washing machine appliance between the door and the wash basket to provide fluid communication between the wash basket and the ambient environment external to the cabinet. In such embodiments, the damper may be downstream of the aperture and upstream of the wash basket with respect to the flow of ambient air from the ambient environment external to the cabinet through the washing machine appliance.
As mentioned, embodiments of the present disclosure may include a one-step wash and dry operation, e.g., in a single continuous cycle in a single appliance. For example, methods of drying a load of articles in a washing machine appliance according to the present disclosure may include washing the load of articles in the wash basket prior to the drying operation, such as prior to drying the load of articles in the washing machine appliance by rotating the wash basket within the washing machine appliance (thus, it should be understood that drying the load of articles in the washing machine appliance by rotating the wash basket is separate from and in addition to any steps that include rotating the wash basket during the wash operation or wash portion of a one-step cycle). Washing the load of articles in the wash basket may include flowing a volume of water into a wash tub of the washing machine appliance and rotating the wash basket at an extraction speed after flowing the volume of water into the tub. The extraction speed may be a rotational speed at which the load of articles are generally fixed in place within the wash basket, such as plastered in the wash basket and against a wall, e.g., side wall, thereof, and at which moisture may be centrifugally extracted from the articles. Rotating the wash basket at the extraction speed may thereby include wringing moisture from the load of articles due to such rotation. Such embodiments may further include activating a drain pump of the washing machine appliance whereby wash liquid is removed from the wash tub of the washing machine appliance after flowing the volume of water into the tub, e.g., the wash tub and/or the sump defined therein may be at least partially drained at an end of washing the load of articles, such as at an end of a wash portion of a one-step wash and dry cycle and just before the beginning of a dry portion of the one-step wash and dry cycle.
In some embodiments, the washing machine appliance may be configured to determine or estimate the remaining moisture content (RMC) in articles within the tub. For example, the washing machine appliance may be configured to determine, e.g., measure or estimate, a dry weight of the articles at the beginning of the wash cycle (e.g., prior to adding any water or other wash liquid to the wash tub or articles therein) and to determine, e.g., measure or estimate, one or more saturated weight values of the load of articles during the spin cycle, such as a wet weight at an end of the spin cycle, such as while the tub is coasting down from the final spin speed. In such example embodiments, the washing machine appliance may then determine the RMC based on the difference in weight of the articles over time (e.g., decreasing weight as the articles are dried) compared to the dry weight. For example, a weight of the load of articles may be measured once the humidity drops below the threshold, and the RMC of the articles may be determined based on the weight measured when the humidity drops below the threshold compared to the dry weight or to the wet weight, such as a difference between the weight measured when the humidity drops below the threshold and the dry weight may be the RMC, e.g., in pounds.
For example, the weight of the load of articles may be measured in the washing machine appliance, such as in a load sensing step which may be performed prior to drying the load of articles, such as prior to washing the load of articles in embodiments where the method includes both washing and drying the load of articles, e.g., in a one-step wash and dry cycle. In embodiments where the load sensing step is performed prior to washing the load of articles, the load size may also be used to determine an amount of water, detergent, wash liquid, etc., to use during the washing portion of the cycle. In some embodiments, the load sensing step may be performed multiple times, such as prior to filling the wash tub with liquid, e.g., to determine a dry weight, and again after or during a spin cycle, e.g., to determine a wet weight, and the load sensing step may further be performed at one or more various times during a dry operation (such as a dry portion of a one-step wash and dry operation), e.g., for comparison to previously-measured weights to evaluate or estimate the RMC of the load of articles.
The load sensing step, regardless of when performed, may include determining the weight based on an inertia of the load of articles. Measuring inertia of the load of articles, e.g., during the load sensing step, may include rotating the basket with the articles therein at a range of speeds and determining the inertia of the load of articles based on such rotations. For example, the inertia of the load of articles may be measured by accelerating the basket to a first reference speed, then decelerating the basket, e.g., allowing the basket to coast, to a second reference speed less than the first reference speed. In such embodiments, the inertia of the load of articles may be determined based on the time it takes for the basket to decelerate, e.g., coast, to the second, lower, reference speed. As another example, the inertia of the load of articles may be measured based on the amount of work, e.g., as reflected by an amount of power drawn by a motor of the washing machine appliance, required to accelerate the basket to a reference speed from a starting speed. In such embodiments, the starting speed may be zero, or may be greater than zero but less than the reference speed.
In some embodiments, the humidity threshold or dry threshold (or both) may be based on a user-selected dryness level. For example, the user-selected dryness level may correspond to or be correlated with a humidity (e.g., percent relative humidity) and/or with a remaining moisture content (e.g., in pounds or other unit of weight), such as in a lookup table. For example, the user-selectable dryness levels may range from “Damp” to “Extra Dry,” with one or more intermediate options between damp and extra dry, or, as another example, the user-selectable dryness levels may include “Less Dry,” Normal Dry,” and “Extra Dry.” In such embodiments, a lookup table may be provided, with each of the two or more user-selectable dryness levels having a humidity threshold and/or RMC threshold associated therewith in the lookup table. Thus, the humidity threshold or dry threshold (or both) may be selected and applied based on and in response to the user-selected dryness level. For example, a user-selected dryness level of “Damp” or “Less Dry” may correspond to a humidity threshold of about 40% and/or a dry threshold of about 3 lbs. RMC, whereas a user-selected dryness level of “Extra Dry” may correspond to a humidity threshold of about 30% and/or a dry threshold of about 1 lbs. RMC, and an intermediate level such as user-selected dryness level of “Normal Dry” may correspond to a humidity threshold of about 35% or about 38% and/or a dry threshold of about 2.0 lbs. or about 2.5 lbs. RMC, etc.
As noted above, methods 800 and 900 may be interrelated or combined in various ways in multiple embodiments of the present disclosure. Thus, for example, embodiments of the present disclosure also include a one-step wash and dry cycle which is initiated in response to a user input, e.g., such methods may include an initial step of receiving a user input such as a selection of the one-step wash and dry cycle from a local user interface of the washing machine appliance or a remote user interface device (such as a smartphone, etc.). Such methods may also include providing a prompt for the user to select a dryness level or may otherwise include receiving a selected dryness level, e.g., via a user input. As noted above, such methods may include a single continuous cycle comprising both a wash portion and a dry portion. In some embodiments, exemplary methods may include monitoring humidity within the washing machine appliance throughout the cycle, e.g., during both the wash portion and the dry portion, or during the dry portion only.
Continuing with the same example from the preceding paragraph, exemplary methods, e.g., one-step wash and dry cycles, may include dry load sensing and starting the wash cycle (wash portion), such as where the dry load sensing is performed at the outset of the wash portion, e.g., before filling the wash tub with liquid. When the wash cycle or wash portion is completed, the dry portion is started.
During the dry portion, e.g., while rotating the wash basket within the washing machine appliance to dry the load of articles therein, the humidity within the washing machine appliance may be monitored, such as measured continuously or periodically, e.g., every X seconds. Such methods may further include comparing the monitored humidity within the washing machine appliance to a humidity threshold, such as determining whether the measured humidity went down to (or below) the humidity threshold corresponding to the user-selected dryness level. If not, the method may return to or continue monitoring the humidity within the washing machine appliance. When the measured humidity is less than or equal to the humidity threshold, some exemplary methods may then estimate the RMC in the load of articles, and compare the RMC in the load of articles to a dry threshold. The dry threshold may also correspond to the user-selected dryness level. When the RMC is greater than the dry threshold, the method may continue, e.g., loop back to a subsequent or continued estimation of the RMC and comparison to the dry threshold. When the RMC is less than or equal to the dry threshold, the method may then end and/or the dry portion of the one-step wash and dry cycle may then end, e.g., may be terminated in response to the RMC less than or equal to the dry threshold.
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.