The present invention relates to an aquarium heater, and more particularly to a glass-tube heater that is shut down upon removal out of water or a heater that shuts down when excessively tipping.
In the modern, busy society, people often take various leisure or entertaining activities. An example is breeding aquatic plants and animals in an aquarium that is set up in an indoor space, or fishing breeding or aquatic plant growing is taken by occupation. Watching fishes swimming in water could help relax tense mood and stress.
To breed aquarium fishes, proper control of water temperature of the aquarium is an essential factor of well keeping the fishes. Heaters are commonly used to keep the temperature of an aquarium in order to prevent excessively low temperature of water inside the aquarium. This is of particular importance in wintertime. Although most of the fishes do not die of low temperature, improper water temperature would negatively affect the color and appetite of the fishes.
A conventional glass-tube heater does not offer a protection function of shutting down power supply upon removal out of water, and this often results in incidences of residual heat of the aquarium heater being excessively high or improper control of water temperature. For example, water level of an aquarium would drop due to water evaporation and in such an instance, ignorance of supplementing water would result in the glass tube of the heater that is set in heating getting cracked or broken by an excessively high temperature. This is a significant defect of the glass-tube heater and requires further improvement.
The primary objective of the present invention is to provide a glass-tube heater that shuts down power upon removal out of water so as to ensure quick termination of heating when removed out of water and thus prevent an excessively high temperature of heating.
To achieve the above objective, the present invention provides a glass-tube heater, which comprises a glass tube, a cap coupled to an end of the glass tube, and a temperature display unit. The glass tube is provided, in an interior thereof, with an off-water protection sensor, a control circuit board, one of a triode thyristor (TRIAC) and a relay, and a heating element. The control circuit board includes a control unit, and the control circuit board is electrically connected with the temperature display unit. The off-water protection sensor, the control unit, the one of the TRIAC and the relay, and the heating element are electrically connected together to form a control circuit. Upon detecting being located in water, the off-water protection sensor transmits a corresponding signal to the control unit, and the control unit controls, according to a detected water temperature, the one of the TRIAC and the relay to switch on for conducting electricity therethrough so as to control the heating element to carry out heating or not. Upon detecting being removed out of water, the off-water protection sensor transmits a corresponding signal to the control unit, and the control unit switches off the one of the TRIAC and the relay to cut off electricity so as to prevent the heating element from heating.
An efficacy of the present invention is that devices or components for temperature control, detection, and heating are all disposed inside the glass tube, and the off-water protection sensor is used to detect and identify if being removed out of water so as to control the heating element to heat or not thereby ensuring quick termination of heating upon removal out of water and preventing a heating temperature from being excessively high and eliminating situations of non-loaded heating after being removed out of water.
Another objective of the present invention is to provide a glass-tube heater, which upon excessively tipping, terminates heating so as to cut off power supply to prevent an excessively high heating temperature.
To achieve said another objective, the present invention provides a heater that comprises a glass tube, a cap coupled to an end of the glass tube, and a temperature display unit. The glass tube is provided, in an interior thereof, with a tipping switch, a control circuit board, one of a TRIAC and a relay, and a heating element. The control circuit board includes a control unit, and the control circuit board is electrically connected with the temperature display unit. The tipping switch, the control unit, the one of the TRIAC and the relay, and the heating element are electrically connected together to form a control circuit. The tipping switch is operable to transmit a signal to the control unit, and the control unit controls, according to a detected water temperature, the one of the TRIAC and the relay to switch on for conducting electricity therethrough so as to control the heating element to carry out heating or not. When the heater excessively tips, the tipping switch transmits a signal to the control unit, and the control unit controls the one of the TRIAC and the relay to cut off the electricity to prevent the heating element from heating.
An efficacy of the present invention is that devices or components for temperature control, detection, and heating are all disposed inside the glass tube, and the tipping switch controls the heating element to terminate heating so as to provide a function of shutting down power for safety protection.
Referring to
The glass tube 10 is provided, in an interior thereof, with an off-water protection sensor 40, a control circuit board 50, a switch element 60 (which can be one of a bidirectional triode thyristor (commonly abbreviated TRIAC) and a relay), and a heating element 70. The control circuit board 50 includes a control unit (not shown), and the control circuit board 50 is electrically connected with the temperature display unit 30. The drawing shows only a TRIAC 60 as an example for illustration, as a relay is functionally similar to the TRIAC 60 and provides the same effective operation.
The off-water protection sensor 40, the control unit, one of one of the TRIAC 60 and the relay, and the heating element 70 are electrically connected together to form a control circuit.
The off-water protection sensor 40, upon identifying being located in water, transmits a signal to the control unit, and the control unit makes control, according to a detected water temperature, on the one of the TRIAC 60 and the relay to switch on for conducting an electricity therethrough so as to control the heating element 70 to carry out heating or not.
The off-water protection sensor 40, upon identifying being removed out of water, transmits a signal to the control unit, and the control unit switch the one of the TRIAC 60 and the relay off to cut off electricity, so that the heating element 70 is prevented from further operation for heating.
As such, devices or components for temperature control, detection, and heating are all disposed inside the glass tube, and the off-water protection sensor is used to detect and identify if being removed out of water or kept in water so as to control the heating element to heat or not thereby ensuring quick termination of heating upon removal out of water and preventing a heating temperature from being excessively high and eliminating situations of non-loaded heating after being removed out of water.
Examples will be provided below for illustration.
In an embodiment, the control unit comprises one of a micro control unit (MCU) and a comparator.
In an embodiment, the heating element 70 is selected as one of a heating filament and a heating device.
In an embodiment, the temperature display unit 30 is made in a scale or graduation form and is controlled through a rotary knob 31 for temperature setting.
Referring to
Referring to
Referring to
The glass tube 10 is provided, in an interior thereof, with a tipping switch 71, a control circuit board 50, a switch element 60 (which can be one of a TRIAC and a relay), and a heating element 70. The control circuit board 50 includes a control unit (not shown), and the control circuit board 50 is electrically connected with the temperature display unit 30. The drawing shows only a TRIAC 60 as an example for illustration, as a relay is functionally similar to the TRIAC 60 and provides the same effective operation.
The tipping switch 71, the control unit, one of the TRIAC 60 and the relay, and the heating element 70 are electrically connected together to form a control circuit.
In this arrangement, the tipping switch 71 is operable to transmit a signal to the control unit, and the control unit makes control, according to a detected water temperature, on the one of the TRIAC 60 and the relay to switch on for conducting an electricity therethrough so as to control the heating element 70 to carry out heating or not.
When the heater is excessively tipping, the tipping switch 71 transmits a signal to the control unit, and the control unit switches off the one of the TRIAC and the relay for cutting off electricity, so that the heating element 70 is prevented from further operation for heating.
As such, devices or components for temperature control, detection, and heating are all disposed inside the glass tube, and the tipping switch controls the heating element to terminate heating so as to provide a function of shutting down power for safety protection.
In summary, the present invention could surely achieve the desired purposes and demonstrates a value of practical use.
Number | Date | Country | Kind |
---|---|---|---|
108211064 | Aug 2019 | TW | national |
Number | Name | Date | Kind |
---|---|---|---|
2477363 | Danner | Jul 1949 | A |
2811629 | Danner | Oct 1957 | A |
3107289 | Willinger | Oct 1963 | A |
3564589 | Arak | Feb 1971 | A |
4124793 | Colman | Nov 1978 | A |
4234785 | Lefebvre | Nov 1980 | A |
4327281 | Jager | Apr 1982 | A |
4812626 | Strada | Mar 1989 | A |
4983813 | Van Tulleken | Jan 1991 | A |
5113057 | Tsai | May 1992 | A |
5392380 | Tsai | Feb 1995 | A |
5568587 | Marioni | Oct 1996 | A |
5834741 | Tseng | Nov 1998 | A |
5905849 | Ito | May 1999 | A |
6061500 | Su | May 2000 | A |
6097007 | Wang | Aug 2000 | A |
6118934 | Tseng | Sep 2000 | A |
6407371 | Toya | Jun 2002 | B1 |
6504998 | Yu-Chin | Jan 2003 | B1 |
6584280 | Wang | Jun 2003 | B1 |
7046923 | Magri | May 2006 | B2 |
7049554 | Lolato | May 2006 | B2 |
7680400 | Reusche | Mar 2010 | B2 |
8041199 | Reusche | Oct 2011 | B2 |
20130087549 | Wang | Apr 2013 | A1 |
20160345546 | Wang | Dec 2016 | A1 |
20190059341 | Su | Feb 2019 | A1 |
Number | Date | Country | |
---|---|---|---|
20210051925 A1 | Feb 2021 | US |