1. Field of Invention
The present invention relates to electric appliance, and more particularly, relates to an electrical water heater equipped with temperature control unit, by which a user is able to selectively and purposely setting the heating temperature of the water reserved in the heater.
2. Description of Related Arts
Commonly, an electrical water heater comprise a temperature control unit, through which a predetermined temperature, 100° C., is set in advance, so that when the water reserved in the vessel of the water boiler reach such predetermined temperature, the temperature control unit would automatically switch off electricity power for terminating the heating process. However, in routine practices, some warm or lukewarm water would be required under some circumstances, rather than 100° C. boiling water. Obviously, the conventional water boilers were unpractical for providing such temperature adjusting function. Unfortunately, user had to be patient and waiting for the boiled water gradually cooled down to meet their requirements. Needless to say, considerable energy had been wasted in such heating process. It is highly desirable to develop a water heater including an adjustable temperature control unit so that user could freely and deliberately set an optimal temperature of the water.
A primary object of the present invention is to provide an electrical water heater having an adjustable temperature control unit, so that user could freely and deliberately set a predetermined heating temperature.
Another object of the present invention is to provide an electrical water heater having an adjustable temperature control unit, wherein once the predetermined temperature is reached during heating process, the water temperature could be maintained.
Another object of the present invention is to provide an electrical water heater having an adjustable temperature control unit, wherein no complicated parts are required to achieve aforementioned objects.
Accordingly, to achieve above mentioned objects, the present invention provides an electrical water heater, comprising:
a water container comprising a container body having a water cavity for containing a predetermined volume of water, and a container base supporting the container body thereon;
a water heater unit which comprises an electrical heating element mounted on the container base for heating up the water within the water cavity of the container body; and
a temperature control unit, which is electrically connected to the water heater unit for maintaining the water within the water cavity at a desired heat-up temperature, comprising:
a thermal sensor mounted on the container base for monitoring a water temperature of the water within the water cavity; and
a temperature controller, which is received in the container base, comprising a controlling circuit electrically connected to the thermal sensor and a temperature adjuster electrically connected to the controlling circuit for presetting the heat-up temperature, wherein when the water temperature detected by the thermal sensor is below said heat-up temperature, the controlling circuit is activated to operate the heating element for heating up the water until the water temperature reaches the heat-up temperature, and when the water temperature detected by the thermal sensor is above the heat-up temperature, the controlling circuit is activated to switch off the water heater unit so as to keep the water within the water cavity at the heat-up temperature.
These and other objectives, features, and advantages of the present invention will become apparent from the following detailed description, the accompanying drawings, and the appended claims.
Referring to
Furthermore, the electrical water heater 1 comprises a temperature control unit 30, which is electrically connected to the water heater unit 20 for maintaining the water within the water cavity 11 at a desired heat-up temperature, the temperature control unit 30 comprises a thermal sensor 31 mounted on the container base 12 for monitoring a water temperature of the water within the water cavity 11, and a temperature controller 32, which is received in the container base 12, wherein the temperature controller comprises a controlling circuit 321 electrically connected to the thermal sensor 31 and a temperature adjuster 322 electrically connected to the controlling circuit 321 for presetting the heat-up temperature, wherein when the water temperature detected by the thermal sensor 31 is below said heat-up temperature, the controlling circuit 321 is activated to operate the electrical heating element 21 for heating up the water until the water temperature reaches the heat-up temperature, and when the water temperature detected by the thermal sensor 31 is above the heat-up temperature, the controlling circuit 321 is activated to switch off the electrical heating element 21 so as to keep the water within the water cavity 11 at the heat-up temperature.
In the present invention, the container body 10 is embodied as a conventional vessel having a bottom wall 101 and a surrounding wall 102 upwardly extended from the bottom wall 101 to define the water cavity 11 for containing the water. The container body 10 further has a bottom edge 104 downwardly and outwardly extended from the surrounding wall 102 to form a base cavity 105 for receiving the water heater unit 20. In the preferred embodiment of the present invention, the water heater unit 20 is received within the base cavity 105, so that the heating unit 20 is invisible from outside nor exposed to the user thus preventing any accidental injury or scalding. As shown in
As shown in
Moreover, the thermal sensor 31 is disposed within the reserving cavity 103 and embedded onto the bottom wall 101 of the container body 10 for instantly monitoring the temperature of the water. Here, the thermal sensor 31 is a kind of water immersible thermal sensor having a sensor probe 311, having a thermal resistor, exposed into the water 11 for detecting the temperature of the water and a sensor body 312 penetrating the bottom 101 in a water tight manner. What is more, the thermal sensor 31 is a thermistor having a variable resistance subjected to be changed corresponding to the water temperature such that the controlling circuit 321 could read the variable resistance of the thermal sensor 31 to activate the water heater element 20.
Preferably, the electrical heating element 21 comprises an electro-thermal plate 211 sealedly mounted between the container base 12 and a bottom wall 101 of the container body 10 which is made of thermal conductive material, such that when the electro-thermal plate 211 is activated by the controlling circuit 321, the electro-thermal plate 211 is capable of generating heat through the bottom wall 101 of the container body 10 for heating up the water within the water cavity 11. Moreover, the thermal sensor 31 is mounted onto the heating unit electro-thermal plate 211, and a sensor gasket 313 is provided for thermally separating the thermal sensor 31 and the heating element 21. As shown in
According to the preferred embodiment of the present invention, the controlling circuit 321 comprises a central processor unit CPU 101, a transformer circuit 99 adapted for electrically connecting with an external AC power supply 98 to convert an AC power of the AC power supply into a DC power, a bridge rectifier circuit 100 electrically linked to the transformer circuit 99 for outputting the DC power, and a relay circuit 102 electrically coupled with the CPU 101 to selectively activate the heating element 21 for heating up the water within the water cavity 11.
Here, the CPU 101 is provided at a printed circuit board 90, wherein the thermal sensor 31 is electrically connected with the printed circuit board 90 via an electrical connector 325. As shown in
Further, the temperature adjustor 322 comprises a temperature setting switch 3221 electrically connected to the controlling circuit 321 to selectively input the heat-up temperature, a display screen 3222 provided on an outer wall of the container base 12 to display the heat-up temperature, and a temperature converting circuit electrically linked to the controlling circuit 321 for reciprocally converting the heat-up temperature indicated on the display screen 3222 between Fahrenheit mode and Celsius mode.
As shown in
The printed circuit board 90 is received within the base cavity 105 and a transformer 50 is attached onto the bottom cover 12 via transformer panel 51. It is worth to mention that a slot 121 is defined on the bottom cover 12 for permitting a winding spool 122 positioned therein, therefore, an electric wire 123 could be reeled onto the winding spool 122 in extractably manner. In case of the AC power supply 98 is away with the container body 10, the electric wire 123 could be unspooling from the winding spool 122 to obtain an optimal operational distance.
Referring to
According to the present invention, the controlling circuit 321 is adapted to convert the water temperature detected by the thermal sensor 31 into a digital detecting signal and receives a digital inputting signal from the temperature adjuster 322 when the heat-up temperature is set, such that the controlling circuit 321 would compare the detecting signal with the inputting signal to generate a control signal to the water heater unit 20 so as to selectively activate the heating element 21.
Referring to
Preferably, the CPU 101, for example, is embodied as a PIC16C57 of 4.0 MHz, and of standby state when electrically powered. After the switch SW1/SW2 is turned on, a high voltage is generated from the pin RB2 or RB3 of the CPU 101, enabling the comparison of the temperature detected by the thermal sensor 31 with the heating temperature preset via the temperature adjustor 322. That is to say, after the push button provided on the temperature adjustor 322 is pressed, a preset temperature detecting and comparing program would be initiated.
Moreover, the thermistor RT of the thermal sensor 31 is electrically coupled with the pins RA1 and RA2 of the CPU. The temperature signal detected by the thermal sensor 31 would be compared by the CPU 101 to determine whether the temperature of the water being matched with a threshold value stored in the CPU 101. In case the detected temperature of the water is lower than the threshold value, i.e. the preset temperature set by the user, a high level signal would be outputted from the RB4 pin of the CPU 101 to the base of a triode Q14 so as to conduct the transistor Q14 for switching off the relay K. Therefore, the electrical power is then applied on the heating unit 20 through the relay K. Or otherwise, when the CPU detected that the water temperature is equal to or higher than the preset temperature, the pin RB4 of the CPU 331 would output a lower level signal to power off the heating unit 20.
It is noted that the thermal sensor 31 of the present invention is of an immersible mode, having a sensor probe 311 directly exposed to the water reserved in the water cavity 11. As a result, the resistance of the thermal resistor would be varying from time to time responsible to the variance of the water temperature. In other words, the constant variance of the resistance would alter the discharging speed of the electrical capacity C0. In short, the thermal sensor 31 is directly exposed to the water for ensuring the thermal resistor rather sensitive to the change of the water temperature. As a result, the controlling circuit 321 electrically coupled with such thermal sensor 31 could precisely control the power on/off of the heating unit 20 in an instant manner.
The temperature adjustor 322 comprises the adjustable knob 3221 for adjusting the input heat-up value. The adjustable knob is connected to a HEADER3 encoder for outputting encoded digital signals. As shown in
Therefore, the relay circuit 102 comprises the relay K, the triode Q14 and the diode D2. As shown in the
Preferably, the pin RC7 of the CPU 101 is connected to one end of the switch SW3 through a resistor R0, wherein the switch SW3 is correspondingly mated with two welding spots of the printed circuit board 90. According to the present invention, when the first welding spot is powered, the temperature shown on the display screen would be in Fahrenheit value, instead, if the second welding spot is grounded, the temperature shown on the display screen would be in Celsius value. Thus, the CPU is capable of controlling the display screen to display the temperature in an alternative mode. That is to say, Fahrenheit value would be displayed when the switch SW3 is connected to the ground, and Celsius value would be displayed when the switch SW3 is connected to the power supply VDD.
One skilled in the art will understand that the embodiment of the present invention as shown in the drawings and described above is exemplary only and not intended to be limiting.
It will thus be seen that the objects of the present invention have been fully and effectively accomplished. Its embodiments have been shown and described for the purposes of illustrating the functional and structural principles of the present invention and is subject to change without departure from such principles. Therefore, this invention includes all modifications encompassed within the spirit and scope of the following claims.
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Number | Date | Country | |
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20060243272 A1 | Nov 2006 | US |