System for turning off stove knobs, and cooktops comprising same
11162686 · 2021-11-02
Assignee
Inventors
- Mauricio Gonzalez Palacio (Medellin, CO)
- Mario Alberto Luna Del Risco (Medellin, CO)
- Julian Esteban Tabares Montoya (Medellin, CO)
Cpc classification
F23N1/005
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F23N1/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F23N2241/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F23N5/105
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F23N5/203
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F23N5/206
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24C3/126
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F23N1/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24C3/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F23N5/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F23N5/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The present invention relates to an electromechanical system for automating the turning off of the knobs of a stove. The system can quickly identify the occurrence of a gas leak and turn off the knob corresponding to the burner that is leaking. The system is also connected to a user interface, providing real-time information about the status of the burners and allowing the user to turn off the knobs remotely. The system has an improved service life, does not considerably change the aesthetics of the stove and can be designed to fulfil different torque requirements. The invention also relates to cooktops comprising said system.
Claims
1. A system for turning off stove knobs comprising: a pinion (2) coupled to a knob shaft; a motor (4); a pinion (3) coupled to motor (4); a micro switch (5); temperature measuring instruments for burners of a stove; and a master device in communication with a user interface, wherein a notch of the pinion (2) coupled to the knob shaft is in contact with the micro switch (5) and is coupled with the pinion (3) coupled to the motor, which is in contact with the motor (4), so that the motor transmits rotational movement to the pinion (3) coupled to the motor and to the pinion (2) coupled to the knob shaft, generating movement of a knob axis (1), the micro switch (5) and the temperature measuring instruments connected to a processor of the master device, and the processor being configured to: i) set a value of room temperature as “previous temperature”; ii) measure a temperature in each of the burners using the temperature measurement instruments and assign it as “current temperature”; iii) calculate a difference in absolute value between the “current temperature” and the “previous temperature”; iv) read an opening state of the burners from the micro switch, wherein said opening state is set to either open or closed based on the contact between said notch on the pinion (2) coupled to the knob shaft and said micro switch (5); v) assign the value of “current temperature” to “previous temperature” and repeat steps ii) to iv) until the calculated difference between the “current temperature” and the “previous temperature” is less than a defined value and the “current temperature” is less than a temperature setpoint and the opening state is open; vi) timing a delay time; vii) activate the motor; viii) read the opening state of the burners from the micro switch until the opening state is closed; ix) deactivate the motor; x) assign the value of “current temperature” to “previous temperature” and repeat steps ii) to ix).
2. The system according to claim 1, wherein the temperature sensor is a thermocouple.
3. The system according to claim 1, wherein the master device is also in communication with a database server.
4. The system according to claim 3, wherein a gas leak event is saved to said database server.
5. The system according to claim 1, wherein the room temperature value is between −10° C. to 40° C.
6. The system according to claim 1, wherein the calculated difference is between 10° C. to 20° C.
7. The system according to claim 1, wherein the temperature setpoint is between 150° C. to 250° C.
8. The system according to claim 1, wherein the delay time of step vi) is 10 seconds.
9. An oven cover comprising a plurality of burners and a plurality of knobs, characterized in that each of an axis (1) of each knob is coupled to the system of claim 1, by means of the pinion (2) coupled to axis knob, and where the system is hidden in a lower part of the cover.
10. The system according to claim 1, wherein said pinion (3) coupled to the motor has teeth in only a portion of its perimeter, while the rest of its perimeter is circumferential.
11. The system according to claim 1, wherein said pinion (3) coupled to the motor has teeth in 30% of its perimeter, while the remaining 70% of its perimeter is circumferential.
12. The system according to claim 1, wherein said master device sends an alert to said user interface when a gas leak is identified.
13. The system according to claim 1, wherein a user verifies via said user interface at least one of: whether said knob is turned on or turned off or an existence of a gas leak.
14. The system according to claim 1, wherein a user remotely controls turning off said knob via said user interface.
15. The system according to claim 14, wherein said knob is remotely turned off immediately or with a time delay.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
DETAILED DESCRIPTION OF THE INVENTION
(5) The present invention is directed to an electromechanical system for stoves, to automate turning off its knobs in case of leakage and to the kitchen covers that comprise them.
(6) The system comprises an electromechanical system, temperature measurement instruments, switches to capture the opening of the gas valves of each burner and a master embedded electronic device.
(7) In one embodiment of the invention, the electromechanical system is assembled in the inner lower part of an oven and may comprise a pinion coupled to a shaft of a knob of a burner (2), a motor (4), a pinion coupled to the motor (3) and a micro switch (5). The system is coupled to a knob shaft (1), as can be seen in
(8) The pinion coupled to the knob shaft (2) comprises a notch near the micro switch (5), by means of which the micro switch (5) detects if the gas supply valve to the burner is opened. The pinion coupled to the knob shaft (2) is coupled to the pinion coupled to the motor (3), receiving torque to close the knob, coming from the motor (4).
(9) Preferably, the pinion coupled to the motor (3) has teeth in only a portion of its perimeter, while in the rest it is circumferential. In this way, the pinion coupled to the motor (3) is coupled to the pinion coupled to the knob shaft (2) only when automated turning off is required. In this way, when the knob shaft (1) is manually operated by the user, there is no wear on the pinion coupled to the knob shaft (2), on the pinion coupled to the motor (3) and on the motor (4). The dimensions of the pinion coupled to the knob shaft (2) will depend on the torque required for a particular design.
(10) Particularly, the pinion coupled to the motor (3) can have teeth in 30% of its perimeter, while in the remaining 70% it is circumferential.
(11) The pinion coupled to the motor (3) is in contact with the motor (4) and with the pinion coupled to the shaft (2) of the knob, transmitting torque between the motor (4) and the pinion coupled to the shaft (2) of the knob. The pinion coupled to the motor (3) has teeth only in a portion of its perimeter, allowing coupling to the pinion coupled to the shaft (2) of the knob only when automated turning off is required; and in manual operations by the user there is no wear of the mechanical parts due to the disengagement of the pinion coupled to the shaft (2) of the knob with the pinion coupled to the motor (3) and to the motor (4).
(12) The motor (4) transmits rotational movement to the pinion coupled to the motor (3), which in turn transmits rotational movement to the pinion coupled to the knob shaft (2), which transmits rotational movement to the knob shaft (1), thus turning off the burner.
(13) The microswitch (5) determines the current state (open or closed) of the burner, when in contact with the notch of the knob shaft (2) and is in connection with the master device with a dry contact digital signal.
(14) The temperature measuring instruments can be thermocouples and are connected to the master device. These instruments are arranged in the burners of the stove, in such a way that they measure the temperature of the flame in each one.
(15) The master device comprises a processor that operates the closing control logic in the event of a leak, based on the temperature measurement made by the temperature measurement instruments in the burners, and on the open state determined by the micro switch. The master device is connected to the motor (4), to which it can send activation instructions, depending on the control logic (
(16) The processor of the master device is configured to execute the following steps:
(17) i) set the value of room temperature as “previous temperature”;
(18) ii) measure the temperature in each of the burners using the temperature measurement instruments and assign it as “current temperature”;
(19) iii) calculate the difference in absolute value between the “current temperature” and the “previous temperature”;
(20) iv) read the opening state of the burners from the micro switch;
(21) v) assign the value of “current temperature” to “previous temperature” and repeat steps ii) to iv) until the difference between the “current temperature” and the “previous temperature” is less than a defined value and the “current temperature” is less than a temperature setpoint and the open state is open;
vi) timing a delay time;
vii) activate the motor;
viii) read the opening state of the burners from the micro switch until the opening state is closed;
ix) deactivate the motor;
x) assign the value of “current temperature” to “previous temperature” and repeat steps ii) to ix).
(22) In one embodiment of the invention, the ambient temperature value employed in step i) can be between −10° C. to 45° C.
(23) Preferably, the comparison value of the difference between the current temperature and the previous temperature can be between 10° C. and 20° C.
(24) The temperature setpoint can be between 150° C. to 250° C.
(25) In particular, the delay time of step vi) can be 10 seconds.
(26) By the above method, it is determined that a leak exists when the temperature of the cookers does not change considerably when the knobs are turned on, and the temperature has not exceeded the setpoint value. This way of determining the leak is much faster than if you compare the current temperature only with a reference temperature setpoint that indicates the leak. This, when a leak exists, cannot be identified until the temperature drops to that reference value; which does not happen with the control method employed by the system of the present invention.
(27) The master device can be in wireless communication with a user interface and/or with a database server in the cloud.
(28) When a leak is identified, the user can be further notified by means of an alert to the mobile interface or the leak event can be saved in the database server.
(29) Optionally, the user can know if each knob is turned on or turned off and the existence of leaks through the mobile interface. From this interface, the user can control turning off the knobs remotely with immediate or timed instructions.
(30) The present invention is also directed to the stove cover comprising the system described above (
(31) The stove cover comprises one or more stoves (also identified as burners) and one or more knobs (7) corresponding to each of these burners, which comprise an axis (1). The system described above is completely installed under the cover (6) of the stove. As can be seen in