The present disclosure relates to smoke detection devices, and more particularly, to a smoke detection device that uses a change in permittivity of air dielectric in a sensor capacitor as smoke passes between the capacitor plates.
A smoke detector generally uses an ionization chamber containing a radioactive ion source that is coupled to a high input impedance operational amplifier. However when operating at elevated temperatures the input leakage current of the operational amplifier increases. This affects overall performance of the ionization chamber smoke detection function. Also the ionization chamber contains radioactive materials that during manufacture necessitate compliance with regulatory requirements pertaining to storing and handling of these radioactive materials. The smoke detectors having ionization chambers containing a radioactive ion source are increasingly coming under stronger government regulatory control due to the radioactive element (ion source) contained therein.
Therefore, a need exists for a way to detect smoke from a fire with a smoke detector that does not require a radioactive ionization chamber as part of the smoke detection sensor.
According to an embodiment, a smoke detector using an air dielectric capacitor as a smoke sensor may comprise: an air dielectric capacitor having a plurality of plates, wherein when clean air flows over surfaces of the plurality of plates the air dielectric capacitor has a first capacitance value and when smoke is in the air flowing over the plurality of plates the air dielectric capacitor has a second capacitance value; a capacitance measurement circuit coupled to the air dielectric capacitor, wherein the capacitance measurement circuit measures a capacitance value of the air dielectric capacitor; and an alarm circuit coupled to the capacitance measurement circuit, wherein when the measured capacitance value is at substantially the second capacitance value the alarm circuit is actuated by the capacitance measurement circuit, and when the measured capacitance value is at substantially the first capacitance value the alarm circuit is not actuated.
According to a further embodiment, the second capacitance value is greater than the first capacitance value. According to a further embodiment, there is a time limit for the air dielectric capacitor to change from the first capacitance value to the second capacitance value, otherwise the alarm circuit will not actuate. According to a further embodiment, the capacitance measurement circuit is a charge time measurement unit (CTMU) circuit. According to a further embodiment, the alarm circuit has a shutdown circuit. According to a further embodiment, a digital processor is coupled to the capacitance measurement circuit and the alarm circuit. According to a further embodiment, the digital processor is a microcontroller. According to a further embodiment, the capacitance measurement circuit, the alarm circuit and the digital processor are fabricated on an integrated circuit die.
According to a further embodiment, a temperature sensor is coupled to the digital processor and a temperature compensation look-up table is stored in a memory coupled to the digital processor and used to compensate temperature induced changes of the first and second capacitance values. According to a further embodiment, a humidity sensor is coupled to the digital processor and a humidity compensation look-up table is stored in a memory that is coupled to the digital processor and used to compensate humidity induced changes of the first and second capacitance values. According to a further embodiment, an audible alert is actuated by the alarm circuit. According to a further embodiment, a visual alert is actuated by the alarm circuit.
According to another embodiment, a smoke detector using an air dielectric capacitor as a smoke sensor may comprise: an air dielectric capacitor having a plurality of plates, wherein when clean air flows over surfaces of the plurality of plates the air dielectric capacitor has a first capacitance value and when smoke is in the air flowing over the plurality of plates the air dielectric capacitor has a second capacitance value; a capacitance change detection circuit coupled to the air dielectric capacitor, wherein the capacitance change detection circuit determines when the air dielectric capacitor changes from the first capacitance value to the second capacitance value; and an alarm circuit coupled to the capacitance change detection circuit, wherein when the capacitance change detection circuit indicates that the first capacitance value has changed to the second capacitance value the alarm circuit is actuated, otherwise the alarm circuit is not actuated.
According to a further embodiment, the second capacitance value is greater than the first capacitance value. According to a further embodiment, the capacitance change detection circuit further comprises a time limit for the air dielectric capacitor to change from the first capacitance value to the second capacitance value, otherwise the alarm circuit will not actuate. According to a further embodiment, the capacitance change detection circuit is a capacitive voltage divider (CVD) circuit. According to a further embodiment, the capacitance change detection circuit is a capacitive sensing module (CSM) circuit.
According to a further embodiment, the capacitance change detection circuit may comprise: a frequency generation circuit using the air dielectric capacitor as part of a frequency determining circuit thereof; and a frequency discriminator circuit coupled to the frequency generation circuit, the frequency discriminator circuit has a first output when the air dielectric capacitor is at the first capacitance value and has a second output when the air dielectric capacitor is at the second capacitance value. According to a further embodiment, the alarm circuit further comprises a shutdown circuit.
According to a further embodiment, a digital processor is coupled to the capacitance change detection circuit and the alarm circuit. According to a further embodiment, the digital processor is a microcontroller. According to a further embodiment, the capacitance change detection circuit, the alarm circuit and the digital processor are fabricated on an integrated circuit die. According to a further embodiment, a temperature sensor is coupled to the digital processor and a temperature compensation look-up table stored in a memory coupled to the digital processor and used to compensate temperature induced changes of the first and second capacitance values. According to a further embodiment, a humidity sensor is coupled to the digital processor and a humidity compensation look-up table is stored in a memory coupled to the digital processor and used to compensate humidity induced changes of the first and second capacitance values. According to a further embodiment, an audible alert is actuated by the alarm circuit. According to a further embodiment, a visual alert is actuated by the alarm circuit.
According to still another embodiment, a method for detecting smoke in air may comprise the steps of: flowing clean air over a plurality of plates of an air dielectric capacitor; determining a capacitance value of the air dielectric capacitor when the clean air is flowing over the plurality of the plates of the air dielectric capacitor; detecting an increase in the capacitance value of the air dielectric capacitor indicating smoke in the flowing air; and generating a smoke alarm when the increase in the capacitance value of the air dielectric capacitor is detected.
According to yet another embodiment, a method for detecting smoke in air may comprise the steps of: flowing air over a plurality of plates of an air dielectric capacitor; detecting when an increase in a capacitance value of the air dielectric capacitor occurs, thereby indicating smoke in the flowing air; and generating a smoke alarm when the increase in the capacitance value of the air dielectric capacitor is detected.
A more complete understanding of the present disclosure may be acquired by referring to the following description taken in conjunction with the accompanying drawings wherein:
While the present disclosure is susceptible to various modifications and alternative forms, specific example embodiments thereof have been shown in the drawings and are herein described in detail. It should be understood, however, that the description herein of specific example embodiments is not intended to limit the disclosure to the particular forms disclosed herein, but on the contrary, this disclosure is to cover all modifications and equivalents as defined by the appended claims.
A capacitor having air dielectric between its plates may be used to detect the presence of smoke and other contaminants in the dielectric air passing over the plates of the capacitor, according to the teachings of this disclosure. Smoke from typical fires is mainly composed of unburned carbon that has diffused in the surrounding air and rises with the heat of the fire. The permittivity of the carbon particles is about 10 to 15 times the permittivity of clean air. The addition of the carbon particles into the air creates a change in the permittivity thereof that is large enough to measure by measuring a change in capacitance of the capacitor having the air dielectric through which the air laden carbon particles pass through. For example, even a small concentration of carbon particles in air, e.g., 400 PPM, will cause the permittivity to change from about 1.00054 (clean air) to about 1.00494, thereby increasing the capacitance of a 22 picofarad capacitor by about 0.44 percent (0.0967 picofarads=96.7 femtofarads).
Humidity and temperature variations can make significant changes to the permittivity of air, but may be compensated for with external humidity and temperature sensors. Permittivity variations due to environmental humidity and temperature changes generally are over a longer time period than a sudden change in the amount of contaminates (carbon particles, etc.) in the air between the plates of the capacitor. Therefore an envelope detection or averaging process may be used to ignore the slow drift of capacitance due to humidity and/or temperature changes but recognize a more abrupt (rapid) change of the permittivity of air due to carbon particles suddenly showing up in the air dielectric of the sensor capacitor. Various techniques for measuring changes in capacitance may be used and are contemplated herein for all purposes. Those having ordinary skill in capacitor measurement circuits and the benefit of this disclosure could readily apply those capacitor measurement circuits in a smoke detection apparatus.
Referring now to the drawing, the details of specific example embodiments are schematically illustrated. Like elements in the drawings will be represented by like numbers, and similar elements will be represented by like numbers with a different lower case letter suffix.
Referring to
The capacitance, C, of the capacitor 102 is a function of the area, A=length×width, of the conductive plates 110 and 112, the distance, d, between the plates 110 and 112 facing each other, and the permittivity, ε, of the dielectric (air) therebetween according to the formula: C=εA/d. As multiple plates are added (see
The capacitance measurement circuit 104 may be any one or more capacitance measurement circuit that have the necessary capacitance resolution. For example, but not limited to, a Charge Time Measurement Unit (CTMU) may be used for very accurate capacitance measurements. The CTMU is more fully described in Microchip applications notes AN1250 and AN1375, available at www.microchip.com, and commonly owned U.S. Pat. No. 7,460,441 B2, entitled “Measuring a long time period;” and U.S. Pat. No. 7,764,213 B2, entitled “Current-time digital-to-analog converter,” both by James E. Baffling; wherein all of which are hereby incorporated by reference herein for all purposes.
Also the capacitance measurement circuit 104 and the capacitive change detection circuit 106 may be combined as a circuit to just detect a change in capacitance of the capacitor 102. For example, a Capacitive Voltage Divider (CVD) circuit may be used according to AN1298, available at www.microchip.com, and commonly owned U.S. Patent Application Publication No.: US 2010/0181180 A1, entitled “Capacitive Touch Sensing Using an Internal Capacitor of an Analog-to-Digital Converter (ADC) and a Voltage Reference” by Dieter Peter. A Capacitive Sensing Module (CSM) circuit may be used according to AN1171, AN1312 and AN1334, available at www.microchip.com, and commonly owned U.S. Patent Application No.: US 2011/0007028 A1, entitled “Capacitive Touch System With Noise Immunity” by Keith E. Curtis, et al.; wherein all of which are hereby incorporated by reference herein for all purposes.
Another capacitive change detection circuit may be a tuned circuit using the capacitor 102 as one of the frequency determining elements and a frequency discriminator circuit, as more fully described in commonly owned U.S. Patent Application Publication No.: US 2008/0272826 A1, entitled “Interrupt/Wake-Up of an Electronic Device in a Low Power Sleep Mode When Detecting a Sensor or Frequency Source Activated Frequency Change” by Zacharias Marthinus Smit, et al., and is hereby incorporated by reference herein for all purposes.
Referring now to
Referring now to
Referring now to
The digital processor 406 may further be coupled to temperature and/or humidity sensors 432 and 434, respectively, and have some type of compensation means to adjust the capacitance measurements that may change under different temperature and humidity conditions, e.g., using look-up tables that contain calibration and compensation data for the smoke sensor capacitor 402. In addition, the digital processor 406 may have smoothing, time averaging, noise suppression, over sampling, and/or digital signal processing to enhance the capacitance change detection sensitivity and/or reduce noise pick-up. The capacitance measurement circuit 404, the digital processor and memory 406, and the alarm/shutdown driver(s) 408 may be fabricated on an integrated circuit die 430. The integrated circuit die 430 may be encapsulated in an integrated circuit package (not shown).
The digital processor 406 may be, for example but is not limited to, a microcontroller, a microprocessor, a digital signal processor (DSP), a programmable logic array (PLA), an application specific integrated circuit (ASIC), etc. The memory may be volatile and/or non-volatile memory. A software and/or firmware operating program, and temperature and/or humidity compensation table(s) may be stored in the memory coupled to the digital processor 406. The temperature and/or humidity compensation table(s) may be defined during testing of the integrated circuit device 430 by measuring the capacitance or change thereof and correlating any changes to that capacitance as a function of temperature and/or humidity.
Referring to
Referring to
While embodiments of this disclosure have been depicted, described, and are defined by reference to example embodiments of the disclosure, such references do not imply a limitation on the disclosure, and no such limitation is to be inferred. The subject matter disclosed is capable of considerable modification, alteration, and equivalents in form and function, as will occur to those ordinarily skilled in the pertinent art and having the benefit of this disclosure. The depicted and described embodiments of this disclosure are examples only, and are not exhaustive of the scope of the disclosure.
Number | Name | Date | Kind |
---|---|---|---|
3295121 | Scheel | Dec 1966 | A |
3832678 | Gysell et al. | Aug 1974 | A |
4213047 | Mccord | Jul 1980 | A |
4222045 | Cholin | Sep 1980 | A |
4538137 | Kimura | Aug 1985 | A |
4652866 | Siegmann et al. | Mar 1987 | A |
5243330 | Thuillard | Sep 1993 | A |
5422807 | Mitra et al. | Jun 1995 | A |
5705988 | Mcmaster | Jan 1998 | A |
5966078 | Tanguay | Oct 1999 | A |
6433712 | Ohnhacuser et al. | Aug 2002 | B1 |
6661346 | Wood et al. | Dec 2003 | B1 |
6981090 | Kutz et al. | Dec 2005 | B1 |
7307485 | Snyder et al. | Dec 2007 | B1 |
7382140 | Obrecht | Jun 2008 | B2 |
7460441 | Bartling | Dec 2008 | B2 |
7764213 | Bartling et al. | Jul 2010 | B2 |
20020153923 | Piasecki et al. | Oct 2002 | A1 |
20070075710 | Hargreaves et al. | Apr 2007 | A1 |
20080272826 | Smit et al. | Nov 2008 | A1 |
20080312857 | Sequine | Dec 2008 | A1 |
20100102832 | Bartling et al. | Apr 2010 | A1 |
20100181180 | Peter | Jul 2010 | A1 |
20100231241 | Mueck et al. | Sep 2010 | A1 |
20100283760 | Leung et al. | Nov 2010 | A1 |
20110007028 | Curtis et al. | Jan 2011 | A1 |
20110267309 | Hanauer et al. | Nov 2011 | A1 |
Number | Date | Country |
---|---|---|
102009030495 | Jan 2011 | DE |
1719947 | Nov 2006 | EP |
2473201 | Jul 1981 | FR |
1598821 | Sep 1981 | GB |
2117560 | Oct 1983 | GB |
2156126 | Oct 1985 | GB |
2006138205 | Dec 2006 | WO |
Entry |
---|
Yair, R., “Charge Sampling Method for Low Current Measurement,” Review of Scientific Instruments, vol. 45, No. 3, 6 pages, Mar. 1974. |
Margarita, Andrey, “Application Note AN2245: Smart Smoke Detector,” Cypress Semiconductor Corporation, XP055054690, URL: http://www.psocdeveloper.com/uploads/tx—piapappnote/an2245—01.pdf, 12 pages, Feb. 22, 2005. |
Perme, Thomas, “AN1101: Introduction to Capacitive Sensing,” Microchip Technology, Inc., XP002693941, URL: http://ww1.microchip.com/downloads/en/AppNotes/01101A.pdf, 10 pages, Jun. 25, 2007. |
Bohn, Bruce, “AN1250: Microchip CTMU for Capacitive Touch Applications,” Microchip Technology, Inc., XP055007432, URL: http://www.microchip.com/stellent/idcplg?IdcService—SS—GET—PAGE&nodeID=1824&appnote=en539441, 22 pages, Feb. 3, 2009. |
Perme, Thomas et al., AN1298: Capacitive Touch Using Only an ADC (“CVD”), Microchip Technology, Inc., XP055007357, URL: http://www.microchip.com/stellent/idcplg?IdcService=SS—GET—PAGE&nodeId=1824&appnote=en545264, 4 pages, Oct. 7, 2009. |
Davison, Burke, “AN1334: Techniques for Robust Touch Sensing Design,” Microchip Technology, Inc., XP055047201, URL: http://www.microchip.com/downloads/en/AppNotes/01334A.pdf, 28 pages, Aug. 6, 2010. |
Yedamale, Padmaraja et al., “AN1375: See What You Can Do with the CTMU,” Microchip Technology, Inc., XP055047211, URL: http://www.microchip.com/downloads/en/AppNotes/CTMU%2001375a.pdf, 12 pages, May 11, 2011. |
Anonymous, “Delta-Sigma Modulation,” Wikipedia, URL: http://en.wikipedia.org/w/index.php?title=Special:Book&bookcmd=download&collection—id=fal36df1282a073a&writer=rl&return—to=Delta-sigma modulation, 14 pages, 2012. |
International Search Report and Written Opinion, Application No. PCT/US2012/058682, 12 pages, Dec. 17, 2012. |
International Search Report and Written Opinion, Application No. PCT/US2012/058691, 13 pages, Dec. 19, 2012. |
International Search Report and Written Opinion, Application No. PCT/US2012/058832, 11 pages, Jan. 22, 2013. |
International Search Report and Written Opinion, Application No. PCT/US2012/058837, 14 pages, Feb. 18, 2013. |
International Search Report and Written Opinion, Application No. PCT/US2012/058716, 10 pages, Mar. 15, 2013. |
International Search Report and Written Opinion, Application No. PCT/US2012/069086, 10 pages, Apr. 5, 2013. |
International Search Report and Written Opinion, Application No. PCT/US2012/069094, 12 pages, Apr. 5, 2013. |
International Search Report and Written Opinion, Application No. PCT/US2012/058688, 11 pages, Apr. 5, 2013. |
International Search Report and Written Opinion, Application No. PCT/US2012/069076, 11 pages, Apr. 10, 2013. |
International Search Report and Written Opinion, Application No. PCT/US2012/070466, 13 pages, Apr. 24, 2013. |
International Search Report and Written Opinion, Application No. PCT/US2013/052956, 12 pages, Jan. 28, 2014. |
Number | Date | Country | |
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20140035753 A1 | Feb 2014 | US |