1. Field of the Invention
The present invention relates to a method for cooling a container in a refrigerator comprising a refrigeration circuit including a compressor, as well as a refrigerator carrying out this method.
2. Description of the Related Art
In the present description the terms “container” and “bottle” have an equivalent meaning since the method according to the invention can be used for any kind of containers, of any materials, and with any contents, but being particularly useful for beverages contained in bottles. The terms “food” and “beverages” will be used to refer to the content of the container.
It is well known that consumers often use the freezer to rapidly chill their drink bottles. If the bottles are left in the freezer for too long the liquid may freeze and break the bottle. On the other hand if the user takes the bottle out too early, the drink may not be chilled enough. To address these kinds of problems, some freezers provide a “fast chiller” or “party mode” feature. This usually consists of a timer engaged by the user when the bottle is loaded in the freezer. After a fixed time it usually informs the user that the chilling process is over by using an acoustic signal. The chilling period is set short enough to prevent even the smallest bottles from freezing and breaking. In any case this time is not based on the actual drink temperature. So, at the end of the chilling process, the user can find the bottle too cold or not chilled enough.
One aspect of the present invention is to provide a more precise bottle chilling method in which the duration of the process is not based on a fixed timer.
According to another aspect of the invention, the chilling method comprises the steps of:
According to the above features, the duration of the chilling process is tuned on the basis of an estimation of the actual drink temperature. This allows the user to find the drink at the right temperature at the end of the process.
The invention comprises an estimation and prediction algorithm that estimates the actual temperature of the drink and its thermal mass using a temperature sensor located in the same cavity where the bottle is placed. The estimation is used to tune the chilling time so that the user can find his drink at the right temperature at the end of the process. The estimation algorithm can be designed on the basis of a mathematical model that describes the heat exchange process between the real sensor area and the bottle area. Kalman filtering or maximum likelihood techniques can be used for this kind of application. The estimation algorithm receives as an input the actuation variable (i.e. the actual status of the compressor, for instance its speed in the case of variable speed compressor or its ON or OFF state) and uses it to integrate the model equations with the following purposes:
At each step, the algorithm calculates the prediction error e(k) as the difference between the sensor temperature measure y(k) and its estimation y{tilde over ( )}(k). This difference is used as additional input (besides the actuation variable) to refine the next step estimations y{tilde over ( )}(k+1), yb{tilde over ( )}(k+1), Cb(k+1).
Further details and features of the present invention will be clear from the following description of a preferred embodiment, with reference to the attached drawings in which:
A side by side refrigerator 10 comprises a freezer cavity 10a closed by a door 12 and placed on the side of a fresh food cavity closed by a door 13. The freezer cavity presents shelves S and baskets B for storing different food products. A particular shelf, indicated in the drawings with the reference 14, presents a shaped seat 14a corresponding to a curved shape of a bottle D so that it can be placed on the shelf in a horizontal position. In the compartment defined by the shelf 14 and by another shelf positioned above it, indicated in the drawings with reference 16, a temperature sensor 18 is placed.
The solution according to the invention requires a description of the heat exchange process in term of mathematical equations. We will call this solution a “model based” solution. Other solutions, based on “black box” approaches can be used in describing the phenomenon and designing the estimation. In this case, the estimation algorithm would be based on a set of empirical relations (instead of a mathematical model) between the measured variable (i.e. the temperature sensor measure and the compressor speed or its ON/OFF state) and the estimated variables (bottle thermal mass, drink temperature). These solutions can be based on fuzzy logic and/or neural network techniques.
The usage of these kinds of advanced techniques (Kalman filtering, fuzzy logic, neural networks) can provide precise drink temperature estimation without particular constraints in the location of the temperature sensor 18. For this reason, a very cost-effective solution can consist on the use of the standard temperature sensor (normally used for the temperature control of the cavity) as temperature sensor 18 for the above estimation.
In
An alternative to the “model based” approach in the estimation algorithm design is a “black box” based solution, an example of which will now be described. An estimation algorithm able to detect the instant when the loaded warm food reaches the desired temperature will be described. In this embodiment the algorithm is applied to the drink chilling function so it is used to inform the customer when the drink has reached the desired temperature. A schematic representation of the system is shown in
The estimation of the bottle or container temperature can be carried out by measuring and processing, through an energy balance, the temperature of the air flow entering in the cavity (inlet air flow) and the outlet air flow.
Test results prove that the drink chilling time is mainly affected by the drink thermal mass defined as the drink mass multiplied by its absolute temperature T0 at the instant of the introduction inside the cavity. This means that a possible approach in the chilling time estimator design can consist in estimating the bottle thermal mass when the bottle is introduced in the cavity and converting it into a chilling time through an appropriated formula. To simplify the description we will assume that the drink temperature T0 at the introduction instant is “close enough” to the environment temperature where the appliance is placed and it can be directly measured by a dedicated sensor or easily estimated for example by correlating the compressor run time with the internal temperature. Assuming this, the problem of the bottle thermal mass estimation can be reduced to the estimation of the bottle mass M (Kg). Once the bottle mass has been estimated, it is converted into a chilling time, according to the initial temperature (corresponding approximately to room temperature). This is summarized by the block diagram in
In this specific example the bottle mass is computed according to the present formula:
{circumflex over (M)}=Q(a0+a1·y+a2·Tprobe0+a3·Damper0+a4·Damper+a5·Com0)
where:
The average time derivative of the probe temperature y is calculated according to the
The function Q25 is a non linear function that “quantifies” the equivalent thermal mass estimation according to the following non linear formula:
The bottle thermal mass is converted into the estimated chilling time by the second block according to the present formula:
D{circumflex over (T)}10=b0+b1·Tenv+b2·{circumflex over (M)}
where
D{circumflex over (T)}10=Estimated chilling time to reach the target temperature (in this example we assume a fixed target temperature equal to approximately 10° C.).
The numerical values of the coefficients ai, bj relating to the present implementation are reported in
The present solution uses the probe temperature derivative y as a probe temperature attribute to estimate the bottle mass. This has been done because tests results proved that this derivative is the main signal factor which is correlated with the bottle mass. This dependency is mainly related to the distance between the sensor position and the bottle position. In this specific case, referring to the appliance shown in
In addition to the estimation algorithm, another part of the invention relates to the user interface 20 (
Several solutions of user interface are possible, and some of them are shown in the attached
The information at the end of the chilling process can be communicated locally (on the user-interface 20 and/or by means of an acoustic signal) or it can be sent to a remote device.
The present invention provides a more precise chilling process so that the user can provide the drink at the right temperature at the end of the process. The main advantage comes from the usage of advanced estimation techniques that can avoid the usage of an additional hardware sensor inside the cavity. The standard sensor normally used for the cavity temperature control can be used. Although the method has been disclosed in association with a freezer cavity, the method can also be applied for the cooling of a container in the fresh food compartment, with the potential advantage to avoid risk of freezing the bottle.
The present invention has been described considering the drink chilling process as a possible application. It should be recognized that the invention may be equally applied to the chilling of food items inside a freezer/refrigerator cavity to reach a predetermined temperature.
The invention has been described allowing for the warm food (or the drink bottle) to be inserted in the freezer cavity and using the traditional temperature sensor to estimate the chilling time, without further impact to the traditional structure of the appliance (no additional sensor or actuators). This has been done to highlight the potential cost-effective advantage obtainable by using advanced estimation techniques to convert the rough temperature signal coming from the traditional sensor into an estimation of the drink thermal mass. However, it should be recognized that the invention can be applied to a dedicated compartment with dedicated sensor and actuators. This special compartment, for example, can provide a set of different features enabled by the estimation algorithm. The drink chilling time can be one of these features. Another possible feature could regard the quick freezing process of warm food (shock freezing). The estimation algorithm, according to one of the described techniques, estimates the food thermal mass and the correspondent freezing time. During this estimated time, the appliance control will maximize the cooling power to speed-up the freezing process. Once the freezing time has elapsed, the customer is informed that the food is frozen. At this point the appliance control can keep the food at the correct temperature until the customer removes it. This feature has the advantage to freeze the food at high speed in order to maintain its organoleptic properties (“Shock freezing” process). The use of the mentioned estimator of the freezing time guarantees that the function will be active for only the time necessary to freeze the food avoiding any waste of energy.
The use of the algorithm according to the invention (either for drink chilling or for shock freezing) allows for drink chilling or food freezing speed to be maximized by maximizing the appliance cooling power (i.e. compressor speed, compressor run time, air flow . . . ) during the estimated chilling/freezing time.
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