High temerature, hermetically sealed, triaxial mount for a light sensitive element
US-9530904-B2 · Dec 27, 2016 · US
US10415829B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-10415829-B2 |
| Application number | US-201815997235-A |
| Country | US |
| Kind code | B2 |
| Filing date | Jun 4, 2018 |
| Priority date | Jun 6, 2017 |
| Publication date | Sep 17, 2019 |
| Grant date | Sep 17, 2019 |
A practical reading order for non-experts. Skip the full description unless you need deep technical detail.
What the patent document calls the invention.
A short plain-language summary of the technical disclosure.
Who owns or filed the patent and who is credited as inventor.
Filing, priority, publication, and grant dates set the timeline.
The legal scope of protection — read this for what is actually claimed.
Technology tags used to group this patent with similar filings.
Prior art links and similar publications in this corpus.
Official abstract text for this publication.
A current discharge probability of a flame sensor is calculated based on the number of drive pulses applied to the flame sensor and the number of discharges determined to have occurred in the flame sensor after receiving the drive pulses. Degradation indices (degradation progress and remaining lifetime) indicating the current degradation state of the flame sensor are calculated based on the calculated current discharge probability of the flame sensor.
Opening claim text (preview).
The invention claimed is: 1. A flame detecting system comprising: a flame sensor configured to have a pair of electrodes and detect light generated from a flame; an applied voltage generating portion configured to periodically generate a pulsed voltage and apply the generated pulsed voltage across the pair of electrodes of the flame sensor as drive pulses; a current detecting portion configured to detect a current flowing through the flame sensor; a number-of-discharges counting portion configured to count a number of discharges determined to have occurred across the pair of electrodes of the flame sensor based on the current detected by the current detecting portion when the drive pulses generated by the applied voltage generating portion are applied across the pair of electrodes of the flame sensor; a discharge probability calculating portion configured to calculate a current discharge probability of a discharge occurring between the pair of electrodes of the flame sensor based on a number of the drive pulses applied across the pair of electrodes of the flame sensor by the applied voltage generating portion and the number of discharges counted by the number-of-discharges counting portion when the drive pulses are applied across the pair of electrodes of the flame sensor; and a degradation index calculating portion configured to calculate a degradation index indicating a current degradation state of the flame sensor based on the current discharge probability calculated by the discharge probability calculating portion. 2. The flame detecting system according to claim 1 , further comprising: a degradation index displaying portion configured to display the degradation index of the flame sensor calculated by the degradation index calculating portion. 3. A flame detecting system comprising: a flame sensor configured to have a pair of electrodes and detect light generated from a flame; an applied voltage generating portion configured to periodically generate a pulsed voltage and apply the generated puked voltage across the pair of electrodes of the flame sensor as drive pulses; a current detecting portion configured to detect a current flowing through the flame sensor; a number-of-discharges counting portion configured to count a number of discharges determined to have occurred across the pair of electrodes of the flame sensor based on the current detected by the current detecting portion when the drive pulses generated by the applied voltage generating portion are applied across the pair of electrodes of the flame sensor; a discharge probability calculating portion configured to calculate a current discharge probability of a discharge occurring between the pair of electrodes of the flame sensor based on a number of the drive pulses applied across the pair of electrodes of the flame sensor by the applied voltage generating portion and the number of discharges counted by the number-of-discharges counting portion when the drive pulses are applied across the pair of electrodes of the flame sensor; and a degradation index calculating portion configured to calculate a first degradation index indicating a current degradation state of the flame sensor based on the current discharge probability calculated by the discharge probability calculating portion, wherein the degradation index calculating portion comprises a discharge probability initial value storing portion that stores an initial discharge probability value of a discharge occurring between the pair of electrodes of the flame sensor, a discharge probability permissible limit value storing portion that stores a permissible limit discharge probability value of a discharge occurring between the pair of electrodes of the flame sensor, and a degradation progress calculating portion configured to calculate degradation progress of the flame sensor as the first degradation index based on the initial discharge probability value stored in the discharge probability initial value storing portion, the permissible limit discharge probability value stored in the discharge probability permissible limit value storing portion, and the current discharge probability calculated by the discharge probability calculating portion. 4. The flame detecting system according to claim 3 , wherein the degradation index calculating portion further comprises a remaining lifetime calculating portion configured to calculate a remaining lifetime of the flame sensor as a second degradation index based on the degradation progress of the flame sensor calculated by the degradation progress calculating portion and an elapsed time after the flame sensor has started operating. 5. A flame detecting system comprising: a flame sensor configured to have a pair of electrodes and detect light generated from a flame; an applied voltage generating portion configured to periodically generate a pulsed voltage and apply the generated pulsed voltage across the pair of electrodes of the flame sensor as drive pulses; a current detecting portion configured to detect a current flowing through the flame sensor; a number-of-discharges counting portion configured to count a number of discharges determined to have occurred across the pair of electrodes of the flame sensor based on the voltage generating portion are applied across the pair of electrodes of the flame sensor; a discharge probability calculating portion configured to calculate a current discharge probability of a discharge occurring between the pair of electrodes of the flame sensor based on a number of the drive pulses applied across the pair of electrodes of the flame sensor by the applied voltage generating portion and the number of discharges counted by the number-of-discharges counting portion when the drive pulses are applied across the pair of electrodes of the flame sensor; and a degradation index calculating portion configured to calculate a degradation index indicating a current degradation state of the flame sensor based on the current discharge probability calculated by the discharge probability calculating portion, wherein the degradation index calculating portion comprises a discharge probability initial value storing portion that stores an initial discharge probability value of a discharge occurring between the pair of electrodes of the flame sensor, a discharge probability permissible limit value storing portion that stores a permissible limit discharge probability value of a discharge occurring between the pair of electrodes of the flame sensor, and a remaining lifetime calculating portion configured to calculate a remaining lifetime of the flame sensor as the degradation index based on the initial discharge probability value stored in the discharge probability initial value storing portion, the permissible limit discharge probability value stored in the discharge probability permissible limit value storing portion, the current discharge probability calculated by the discharge probability calculating portion, and an elapsed time after the flame sensor has started operating.
Related publications grouped by family.
Answers are generated from the same data shown on this page.