METHOD FOR CONTROLLING OPERATION OF A HOUSEHOLD APPLIANCE AND A HOUSEHOLD APPLIANCE
20200029778 · 2020-01-30
Inventors
Cpc classification
A47L15/0042
HUMAN NECESSITIES
A47L15/4225
HUMAN NECESSITIES
A47L2501/26
HUMAN NECESSITIES
A47L15/0049
HUMAN NECESSITIES
International classification
Abstract
A method for controlling operation of a household appliance may include supplying a liquid to a first space, determining a first behavior(TB1) of temperature measured by a first temperature sensor during supplying of the liquid to the first space, supplying the liquid to a second space by activating a pump in order to transport the liquid from the first space to the second space, determining a second behavior (TB2) of temperature measured by a second temperature sensor during supplying of the liquid to the second space, and determining if a sufficient amount of the liquid has been supplied to the second space or not based on the second behavior (TB2) evaluated with respect to the first behavior (TB1). A household appliance may also be provided.
Claims
1. A method for controlling operation of a household appliance comprising a first space, a second space, a pump arranged to transport a liquid from said first space to said second space, a heating element arranged to heat the liquid in said second space, a first temperature sensor arranged within said first space and a second temperature sensor arranged at said heating element, the method comprises: supplying the liquid to said first space, determining a first behavior (TB1) of temperature measured by the first temperature sensor during supplying of the liquid to said first space, supplying the liquid to said second space by activating said pump in order to transport said liquid from said first space to said second space, determining a second behavior (TB2) of temperature measured by said second temperature sensor during supplying of the liquid to said second space and determining if a sufficient amount of the liquid has been supplied to said second space or not based on said second behavior (TB2) evaluated with respect to said first behavior (TB1).
2. The method according to claim 1, comprising: determining a maximum change in temperature (DeltaTMax) during supplying of the liquid to said first space by evaluating said first behavior behavior (TB1), determining a change in temperature (DeltaT) during supplying of the liquid to said second space by evaluating said second behavior (TB2), wherein said determining if the sufficient amount of the liquid has been supplied to said second space or not is based on a comparison of said change in temperature (DeltaT) and said maximum change in temperature (DeltaTMax).
3. The method according to claim 2, comprising: indicating that the sufficient amount of the liquid has been supplied to said second space if said change in temperature (DeltaT) is at least a half of said maximum change in temperature (DeltaTMax).
4. The method according to claim 2, comprising: indicating that the sufficient amount of the liquid has not been supplied to said second space if said change in temperature (DeltaT) is less than a half of said maximum change in temperature (DeltaTMax).
5. The method according to claim 1, wherein said sufficient amount of the liquid is required for a safe operation of the household appliance.
6. The method according to claim 1 wherein said second temperature sensor is arranged at a surface of said heating element.
7. A household appliance comprising a first space, a second space, a pump arranged to transport a liquid from said first space to said second space, a heating element arranged to heat the liquid in said second space, a first temperature sensor arranged within said first space and a second temperature sensor arranged at said heating element and a control unit, said household appliance being configured to: supply the liquid to said first space, determine a first behavior (TB1) of temperature measured by the first temperature sensor during supplying of the liquid to said first space, supply the liquid to said second space by activating said pump in order to transport said liquid from said first space to said second space, determine a second behavior (TB2) of temperature measured by said second temperature sensor during supplying of the liquid to said second space and determine if a sufficient amount of the liquid has been supplied to said second space or not based on said second behavior (TB2) evaluated with respect to said first behavior (TB1).
8. The household appliance according to claim 7, further being configured to: determine a maximum change in temperature (DeltaTMax) during supplying of the liquid to said first space by evaluating said first behaviorbchaviour (TB1) and determine a change in temperature (DeltaT) during supplying of the liquid to said second space by evaluating of said second behavior (TB2), wherein said determining if the sufficient amount of the liquid has been supplied to said second space or not is based on a comparison of said change in temperature (DeltaT) and said maximum change in temperature (DeltaTMax).
9. The household appliance according to claim 8, further being configured to indicate that the sufficient amount of the liquid has been supplied to said second space if said change in temperature (DeltaT) is at least a half of said maximum change in temperature (DeltaTMax).
10. The household appliance according to claim 8, further being configured to indicate that the sufficient amount of the liquid has not been supplied to said second space if said change in temperature (DeltaT) is less than a half of said maximum change in temperature (DeltaTMax).
11. The household appliance according to claim 7, wherein said sufficient amount of the liquid is required for a safe operation of the household appliance.
12. The household appliance according to claim 7, wherein said second temperature sensor is arranged at a surface of said heating element.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0038] The various aspects mentioned above, including their particular features and advantages, will be readily understood from the following detailed description and the accompanying drawings, in which:
[0039]
[0040]
[0041]
[0042]
DETAILED DESCRIPTION
[0043] The embodiments herein will now be described in more detail with reference to the accompanying drawings, in which example embodiments are shown. Disclosed features of example embodiments may be combined. Like numbers refer to like elements throughout. Well-known functions or constructions will not necessarily be described in detail for brevity and/or clarity.
[0044]
[0045] The method 100 comprises: supplying 101 the liquid to the first space, determining 103 a first behavior of temperature measured by the first temperature sensor 11 during supplying 101 of the liquid to the first space. The first behavior is described in details in conjunction to
[0046] The liquid may for example be water or water comprising a detergent.
[0047] The first space, which for example may be a sump in a dishwasher (illustrated in
[0048] In case of a dishwasher, the liquid may be supplied by a pipe connected to a pipe network and to the dishwasher. The temperature in the first space and in the second space may also vary depending on ambient temperature.
[0049] Thus, when supplying the liquid to the first space, the first temperature sensor may for example register a temperature drop, with other words the first behavior will then illustrate a temperature decrease if the temperature of the air in the first space is higher than the temperature of the liquid. This example is illustrated in
[0050] After the liquid has been supplied to the first space the temperature measured by the first temperature sensor will achieve a first average temperature which is an average temperature with a value between the liquid temperature and the ambient temperature.
[0051] The second space, that may also be called a heating space, may also be filled with air at the ambient temperature before the liquid is supplied to the second space from the first space.
[0052] Thus, when supplying the liquid to the second space, the second temperature sensor may also register a temperature drop if the temperature of the air in the second space is higher than the first average temperature of the liquid supplied from the first space. With other words the second behavior will then also illustrate a temperature decrease. This example is illustrated in
[0053] Therefore, by comparing the second behavior with the first behavior it may be determined if a sufficient amount of the liquid has been supplied to the second space or not. Further, function of the pump may be diagnosed, i.e. it may be determined if the pump works properly or not. Thereby, an improved method for controlling operation of a household appliance is achieved.
[0054] According to some embodiments the method 100 may comprise: determining 111 a maximum change in temperature during supplying 101 of the liquid to the first space by evaluating the first behavior, determining 113 a change in temperature during supplying 105 of the liquid to the second space by evaluating of the second behavior, wherein the determining 109 if the sufficient amount of the liquid has been supplied to the second space 3 or not is based on a comparison of the change in temperature and the maximum change in temperature.
[0055] As an alternative, the method 100 may comprise indicating 115 that the sufficient amount of the liquid has been supplied to the second space if the change in temperature is at least a half of the maximum change in temperature. And further, the method 100 may comprise: indicating 117 that the sufficient amount of the liquid has not been supplied to the second space if the change in temperature is less than a half of the maximum change in temperature.
[0056]
[0057] According to
[0058] After the liquid has been supplied to the first space i.e. after the procedure of supplying of the liquid to the first space has been finished the temperature T increases and stabilizes on a first average temperature Tav1.
[0059] A first time period calculated between the first point in time p1 and the second point in time t2 may also be determined from the first behavior TB1, i.e. by analysing the first behavior TB1.
[0060]
[0061] According to
[0062] The liquid starts to be supplied to the second space at a third point in time t3. At the third point in time t3 the temperature T starts to decrease because temperature of the liquid i.e. the first average temperature Tav1 is lower than the ambient temperature Tamb. At a fourth point in time t4 supplying procedure of the liquid to the second space is finished. At the fourth point in time t4 the temperature T reaches a second minimum value Tmin2. Thus a change in temperature DeltaT may be calculated as a difference between the ambient temperature Tamb and the second minimum value Tmin2. As an alternative, another value of the temperature than the second minimum value Tmin2 may be selected for calculating the change in temperature DeltaT.
[0063] After the liquid has been supplied to the second space i.e. after the procedure of supplying of the liquid to the second space has been finished the temperature T increases and stabilizes on a second average temperature Tav2.
[0064] A second time period calculated between the third point in time p3 and the fourth point in time t4 may also be determined from the second behavior TB2, i.e. from an analysis of the second behavior TB2. Thus, by evaluating the second behavior TB2 with respect to the first behavior TB1 it may be determined if a sufficient amount of the liquid has been supplied to the second space 5 or not.
[0065] The example illustrated in
[0066] As an alternative the first time period and the second time period, described above, may be used for determining if a sufficient amount of liquid has been supplied to the second space or not.
[0067] Other characteristics, as for example derivate of the first behavior TB1 and the second behavior TB2 may be used for determining if a sufficient amount of liquid has been supplied to the second space or not.
[0068]
[0069] According to the embodiments shown in
[0070] The pump 7 is arranged to transport the liquid from the first space 3 to the second space 5. As illustrated in the example in
[0071] The dishwasher comprises a heating element 9 arranged to heat the liquid in the second space 5. The heating element 9 is arranged in the second space 5 so that a transfer of thermal energy between the liquid supplied to the second space 5 and the heating element 9 is possible and sufficient for example for heating the liquid for use in the heating element. In a normal use the liquid is heated by the heating element 9 to about 50-70 C. The heating element 9 may be arranged to have direct contact with the liquid supplied to the second space. The second space 5 may be called heating space or second cavity.
[0072] During an operation of the dishwasher water is heated by the heating element 9 and is then pumped to a wash arm arrangement 6 of the dishwasher 1. The heating element 9 is connected to a power grid through a control unit 15. The heating of the heating element 9 is electrical and is achieved in a regular manner, which is therefore not necessary to described in detail.
[0073] The control unit 15 is connected to a first temperature sensor 11 and to a second temperature sensor 13. The control unit 15 is arranged to receive information data regarding temperature measured by the first temperature sensor 13 and by the second temperature sensor 15. Further, the control unit 15 is arranged to process the information data from the first- and the second temperature sensor 13, 15.
[0074] As illustrated in
[0075] The second temperature sensor 13 is arranged at the heating element 9. The second temperature sensor 13 may be arranged at a distance from the heating element 9, which distance enables sufficient measurement of temperature of the heating element 9. As illustrated in