The present invention relates to a washing machine wherein the main card and the motor card communicate serially.
Washing machines can be operated with a universal motor (UMAC-UMDC) or a brushless motor (Brushless DC). Universal motors can be driven by the main card of the washing machine since their electronic controls are simple.
A separate electronic card is required to be used for the electrical controls of brushless motors. Data about the physical characteristics and operating principles of the motor such as the highest cycle speed, current bound, power, belt-pulley ratio are loaded in the motor card of the brushless motor. Along with the data about the washing machine like the display unit, data pertaining to the operation of the motor such as belt-pulley ratio and washing programs are loaded in the main card. Main card drives the motor by commanding the motor card.
Producing separate motor cards for each model employing different motors results in additional costs, though employing brushless motors increases the performance for the firms producing washing machines.
In the state of the art Japanese Patent Application No JP2001070686, the power consumption generated by the usage of a control card and a motor card in a washing machine, brush of which is driven by the motor, is mentioned.
Another embodiment known in the state of the art is explained in the European Patent Application No EP0684692. In this embodiment, compatible driving the motor to different model washing machines is provided by changing the position of the switches on the motor card.
In these state of the art embodiments, the control cards and motor cards used in different model washing machines are also required to be changed during production. Along with the compatibility and communication problems caused by the production of these cards different for each model, financial losses occur since time and old motor cards are wasted.
The aim of the present invention is the realization of a washing machine wherein production cost is reduced.
The washing machine realized in order to attain the aim of the present invention, explicated in the first claim and the respective claims thereof, comprises a Brushless DC motor, a main card enabling the control of the functions and components and a motor card enabling the operation of the motor in accordance with the commands (program duration, unbalanced load ratio, operation duration etc.) provided by the main card.
Characteristic features (current bound, power, belt-pulley ratio, torque data, the highest rotation speed etc.) related to the motor are loaded in the main card during the production phase of the washing machine. No information regarding the characteristic features of the motor is loaded in the motor card and the motor card drives the motor in accordance with the data about the characteristic features of the motor and to the operation commands provided by the main card.
The washing machine realized in order to attain the aim of the present invention is illustrated in the attached figures, where:
FIG. 1—is the schematic view of a washing machine.
FIG. 2—is the flowsheet of the parameter-loading algorithm used in an embodiment of the present invention.
FIG. 3—is the flowsheet of the data exchange algorithm between the main card and the motor card.
FIG. 4—is the flowsheet of the diagnostic algorithm during the data exchange.
The elements illustrated in the figures are numbered as follows:
1. Washing Machine
2. Motor
3. Main Card
4. Motor Card
5. Communication Unit
The washing machine (1) of the present invention comprises
Characteristic features (current bound, power, belt-pulley ratio, torque data, the highest rotation speed etc.) related to the motor (2) are loaded in the main card (3) during the production phase of the washing machine (1). No information regarding the characteristic features of the motor (2) is loaded in the motor card (4), the motor card (4) drives the motor (2) according to the data about the characteristic features of the motor (2) and to the operation commands provided by the main card (3).
Command units that will detect the commands coming from the main card (3) and transmit them to the motor (2) are provided on the motor card (4).
The motor (2) has different rotation speeds which are high during the spinning process and low during the washing process. The motor (2) rotation speed is determined by the values of motor (2) constant (k), angular speed, motor (2) resistor and the drawn current. The rotation speed varying in different motors (2) is loaded in the main card (3), thus a single motor card (4) can be used in different models of washing machines (1).
The starting torque amount required for the motor (2) to start rotating can vary between 10 Nm and 20 Nm in different motors (2), having different values during washing and spinning periods. By loading the starting torque data for the motor (2) in the main card (3), a single motor card (4) is enabled to be used for motors (2) having different torques.
The clothes clung to the wall of the drum during the spinning process create unbalanced load. Said imbalance makes the rotational movement of the drum difficult. As the imbalance increases, the operation of the motor (2) gets degraded and therefore the motor draws more current. Since the data about the bound of the highest current that can be drawn during unbalanced load are loaded in the main card (3), a single motor card (4) is used for motors (2) having different current bound values.
By loading the characteristic features of the motor (2) such as rotation speed, torque data and bound of the highest current that can be drawn in the main card (3), a single motor card (4) is used for different motors (2) used in different models of the washing machine (1).
The washing machine (1) of the present invention comprises a communication unit (5) that exchanges data diagnostically between the main card (3) and the motor card (4). The communication unit (5) provides each loaded parameter regarding the motor (2) to be sent from the main card (3) to the motor card (4).
The motor card (4) responds the commands provided by the main card (3) only after the loading of the parameters is completed.
The parameter loading algorithm from the main card (3) to the motor card (4) comprises the following steps (
The data exchange method between the main card (3) and the motor card (4) comprises the following steps :
The diagnostic method during the data exchange between the main card (3) and the motor card (4) comprises the following steps (
If the number of resets of the motor card (4) exceeds the predetermined number, the user is warned and the washing machine (1) is shut down. By means of the communication unit (5) exchanging diagnostic data of the present invention, the motor (2) is prevented from malfunctioning and the user safety is provided.
The motor card (4) used in the washing machine (1) of the present invention is compatible for operating with the structure of the washing machine (1) in different models since no data parameter is previously loaded in the motor card (4). Thus the model of the washing machine (1) can be produced only by changing the main card (3) and without the requirement of any other compatibility testing.
Number | Date | Country | Kind |
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A 2008/03075 | May 2008 | TR | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/EP2009/054769 | 4/22/2009 | WO | 00 | 3/7/2011 |